CA2949825A1 - Density phase separation device - Google Patents

Density phase separation device Download PDF

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Publication number
CA2949825A1
CA2949825A1 CA2949825A CA2949825A CA2949825A1 CA 2949825 A1 CA2949825 A1 CA 2949825A1 CA 2949825 A CA2949825 A CA 2949825A CA 2949825 A CA2949825 A CA 2949825A CA 2949825 A1 CA2949825 A1 CA 2949825A1
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CA
Canada
Prior art keywords
float
separator
mechanical separator
hole
collection container
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CA2949825A
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French (fr)
Other versions
CA2949825C (en
Inventor
Jamieson W. Crawford
Ravi Attri
Christopher A. Battles
Gregory R. Hires
Benjamin Bartfeld
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Becton Dickinson and Co
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Becton Dickinson and Co
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Application filed by Becton Dickinson and Co filed Critical Becton Dickinson and Co
Publication of CA2949825A1 publication Critical patent/CA2949825A1/en
Application granted granted Critical
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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L3/00Containers or dishes for laboratory use, e.g. laboratory glassware; Droppers
    • B01L3/50Containers for the purpose of retaining a material to be analysed, e.g. test tubes
    • B01L3/502Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures
    • B01L3/5021Test tubes specially adapted for centrifugation purposes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L3/00Containers or dishes for laboratory use, e.g. laboratory glassware; Droppers
    • B01L3/50Containers for the purpose of retaining a material to be analysed, e.g. test tubes
    • B01L3/502Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures
    • B01L3/5021Test tubes specially adapted for centrifugation purposes
    • B01L3/50215Test tubes specially adapted for centrifugation purposes using a float to separate phases
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D17/00Separation of liquids, not provided for elsewhere, e.g. by thermal diffusion
    • B01D17/02Separation of non-miscible liquids
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/15Devices for taking samples of blood
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/15Devices for taking samples of blood
    • A61B5/157Devices characterised by integrated means for measuring characteristics of blood
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D17/00Separation of liquids, not provided for elsewhere, e.g. by thermal diffusion
    • B01D17/02Separation of non-miscible liquids
    • B01D17/0217Separation of non-miscible liquids by centrifugal force
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D17/00Separation of liquids, not provided for elsewhere, e.g. by thermal diffusion
    • B01D17/12Auxiliary equipment particularly adapted for use with liquid-separating apparatus, e.g. control circuits
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D21/00Separation of suspended solid particles from liquids by sedimentation
    • B01D21/24Feed or discharge mechanisms for settling tanks
    • B01D21/2405Feed mechanisms for settling tanks
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/02Devices for withdrawing samples
    • G01N1/10Devices for withdrawing samples in the liquid or fluent state
    • G01N1/18Devices for withdrawing samples in the liquid or fluent state with provision for splitting samples into portions
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/34Purifying; Cleaning
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/40Concentrating samples
    • G01N1/4077Concentrating samples by other techniques involving separation of suspended solids
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/483Physical analysis of biological material
    • G01N33/487Physical analysis of biological material of liquid biological material
    • G01N33/49Blood
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D21/00Separation of suspended solid particles from liquids by sedimentation
    • B01D21/26Separation of sediment aided by centrifugal force or centripetal force
    • B01D21/262Separation of sediment aided by centrifugal force or centripetal force by using a centrifuge
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/40Concentrating samples
    • G01N1/4077Concentrating samples by other techniques involving separation of suspended solids
    • G01N2001/4083Concentrating samples by other techniques involving separation of suspended solids sedimentation
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/483Physical analysis of biological material
    • G01N33/487Physical analysis of biological material of liquid biological material
    • G01N33/49Blood
    • G01N33/491Blood by separating the blood components
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T436/00Chemistry: analytical and immunological testing
    • Y10T436/25Chemistry: analytical and immunological testing including sample preparation
    • Y10T436/25375Liberation or purification of sample or separation of material from a sample [e.g., filtering, centrifuging, etc.]

Abstract

A device for separating a fluid sample within a collection container, comprising a separator having a through-hole defined therethrough for allowing fluid to pass therethrough, the separator comprising a float, having a first density; and a ballast, having a second density greater than the first density, wherein a portion of the float is connected to a portion of the ballast, wherein the separator has a center of volume that is located within the through-hole, wherein the float defines an upper exterior surface of the separator, the ballast defines a lower exterior surface of the separator, and the through-axis is disposed within a plane angled with respect to a plane extending vertically from an apex of the upper exterior surface of the float to an apex of the lower exterior surface of the ballast and bisecting a center of the separator.

Description

DENSITY PHASE SEPARATION DEVICE
BACKGROUND OF THE INVENTION
Field of the Invention
[0002] The subject invention relates to a device for separating higher and lower density fractions of a fluid sample. More particularly, this invention relates to a device for collecting and transporting fluid samples whereby the device and fluid sample are subjected to centrifugation in order to cause separation of the higher density fraction from the lower density fraction of the fluid sample.
Descriplion of Related Art
[0003] Diagnostic tests may require separation of a patient's whole blood sample into components, such as serum or plasma (the lower density phase components), and red blood cells (the higher density phase components). Samples of whole blood are typically collected by venipuncture through a cannula or needle attached to a syringe or an evacuated blood collection tube. After collection, separation of the blood into serum or plasma and red blood cells is accomplished by rotation of the syringe or tube in a centrifuge. In order to maintain the separation, a harrier must be positioned between the higher density and lower density phase components. This allows the separated coinponents to be subsequently examined.
[0004] A variety of separation barriers have been used in collection devices to divide the arca between the higher density and lower density phases of a fluid sample.
The most widely used devices include thixotropic gel materials, such as polyester gels.
However, current polyester gel serum separation tubes require special manufacturing equipment to both prepare the gel and fill the tubes. Moreover, the shelf-life of the gel-based separator product is limited. Over time, globules may be released from the gel mass and enter one or both of the separated phase components, Furthermore, commercially available gel barriers may react chemically with the analytes. Accordingly, if certain drugs are present in the blood sample when it is taken, an adverse chemical reaction with the gel interface can occur. Furthermore, if an instrument probe is inserted too deeply into a collection container, then the instrument probe may become clogged if it contacts the gel.
10005] Certain mechanical separators have also been proposed in which a mechanical barrier can be employed between the higher and lower density phases of the fluid sample.
Conventional mechanical barriers are positioned between higher and lower density phase components utilizing elevated gravitational forces applied during centrifugation. For proper orientation with respect to plasma and scrum specimens, conventional mechanical separators are typically positioned above the collected whole blood specimen prior to centrifugation.
This typically requires that the mechanical separator be affixed to the underside of the tube closure in such a manner that blood fill occurs through or around the device when engaged with a blood collection set or phlebotomy needle. This attachment is required to prevent the premature movement of thc separator during shipment, handling, and blood draw.

Conventional mechanical separators are typically affixed to the tube closure by a mechanical interlock between the bellows component and the closure.
[0006] Conventional mechanical separators have some significant drawbacks. As shown in FIG. 1, conventional separators include a bellows 34 for providing a scal with the tube or syringe wall 38. Typically, at least a portion of the bellows 34 is housed within, or in contact with a closure 32. As shown in FIG. 1, as the needle 30 enters through the closure 32, the bellows 34 is depressed. This creates a void 36 in which blood may pool during insertion or removal of the needle. This can result in sample pooling under the closure, device pre-launch in which the mechanical separator prematurely releases during blood collection, trapping of a significant quantity of fluid phases, such as serum and plasma, poor sample quality, and/or barrier failure under certain circumstances. Furthermore, previous mechanical separators are costly and complicated to manufacture due to the complicated multi-part fabrication techniques.
00071 Accordingly, a need exists for a separator device that is compatible with standard sampling equipment and reduces or eliminates the aforementioned problems of conventional separators. A need also exists for a separator device that is easily used to separate a blood sample, minimizes cross-contamination of the higher and lower density phases of the sample during centrifugation, is independent of temperature during storage and shipping, and is stable to radiation sterilization. A need further exists for a unitary separation device that requires fewer relative moving parts and that allows for enhanced ease of introducing a specimen into a collection container.

SUMMARY OF THE INVENTION
[0008] The present invention is directed to an assembly for separating a fluid sample into a higher density and a lower density phase. Desirably, the mechanical separator of the present invention may be used with a collection container, such as a tube, and is structured to move within the tube under the action of applied centrifugal force in order to separate the portions of a fluid sample. In certain configurations, the tube is a specimen collection tube including an open end, a closed end, and a sidewall extending between the open end and closed end.
The sidewall includes an outer surface and an inner surface and the tube further includes a closure disposed to fit in the open end of the tube with a resealable septum.
Alternatively, both ends of the tube may be open, and both ends of the tube may be sealed by elastomeric closures. At least one of the closures of the tube may include a needle pierceable rescalable septum.
[0009] The mechanical separator may be disposed within the tube at a location between the top closure and the bottom of the tube. The components of the separator are dimensioned and configured to achieve an overall density for the separator that lies between the densities of the phases of a fluid sample, such as the higher and lower density phases of a blood sample.
[0010] In accordance with an embodiment of the present invention, a mechanical separator for separating a fluid sample into first and second phases within a collection container includes a separator body having a through-hole defined therein. The through-hole is adapted for allowing fluid to pass therethrough. The separator body includes a float, having a first density, and a ballast, having a second density greater than the fn-st density. A portion of the float is connected to a portion of the ballast.
[0011] The mechanical separator may have a spheroid shape. Optionally, the float may include an exterior surface and a joining surface, and the ballast may include a contact surface connected to the joining surface of the float and an exterior surface.
The exterior surface of the float and the exterior surface of the ballast taken together may form the spheroid shape.
[0012] In certain configurations, the float defines the through-hole adapted for allowing fluid to pass therethrough, The through-hole may have a circular cross-section. In other configurations, the through-hole may have an elliptical cross-section. The through-hole may be defined along a through-axis, and the float may be adapted for deformation in a direction perpendicular to the through-axis upon applied rotational force.
[0013] In another configuration, the float further includes a first extended tab adjacent a first opening of the through-hole and a second extended tab adjacent the second opening of the through-hole. At least a portion of thc first extended tab and at least a portion of the second extended tab inay be provided above and about the through-hole and extend radially outwardly from the float in a direction parallel to the through-axis of the separator body.
Optionally, the first extended tab, an upper surface of the float, and the second extended tab may form a convex upper float surface.
[0014] In another configuration, the separator body further includes an extended tab band disposed about a portion of an outer surface of thc float. Optionally, a first portion of the extended tab band is disposed adjacent a first opening of the through-hole, and a second portion of the extended tab band is disposed adjacent a second opening of the through-hole.
In a further configuration, at least one of the first portion and the second portion of the extended tab band have a concave downwardly-directed orientation. Optionally, at least one of the first portion and the second portion of the extended tab band are oriented in an outwardly-extending arcuate shape about an upper portion of at least one of the first opening and second opening of the through-hole. At least one of the first portion and the second portion of the extended tab band may extend outwardly from the float in a direction parallel to the through-axis. At least a portion of the first extended portion and at least a portion of the second extended portion of the extended tab band may have the same shape and curvature. In certain configurations, the extended tab band may further include a joining portion disposed between and connecting thc first extended portion and the second extended portion disposed on each connecting side of the separator body. The first extended portion and the second extended portion of the extended tab band have a concave downwardly-directed orientation, and the joining portions of the extended tab band have a concave upwardly-directed orientation. In certain configurations, the float may include the extended tab band. Optionally, the float and the extended tab band may be formed of TPE
and the ballast is formed of PET.
100151 The mechanical separator may also include an initial engagement band circumferentially disposed about the separator body. The initial engagement band may be continuous or at least partially segmented. The initial engagement band and the float may be formed of the same material. The initial engagement band may bisect at least a portion of the ballast.
[0016] In another configuration, the ballast may include a base portion and a joining structure for engaging a portion of the float. The joining structure may include a plurality of arms for engaging a portion of the float, and the joining structure may provide flexure between the float and the ballast. Optionally, at least a portion of the float may have a circular outer perimeter having a curved cross-section perpendicular to the through-hole. In certain configurations, the float may include a joining structure for engaging a portion of thc ballast. The joining structure may include a plurality of arms for engaging a portion of the ballast, and the joining structure may provide flexure between the float and the ballast.
[0017] In accordance with another embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having a first end, a sccond cnd, and a sidewall extending therebetween.
The collection container defines a longitudinal axis between the first end and the second end.
The separation assembly further includes a mechanical separator having a separator body having a through-hole defined therein. The separator body is adapted to transition from a first initial position in which the through-hole is oriented in an open position for allowing fluid to pass therethrough, to a second sealing position in which the through-hole is oriented in a closed position for preventing fluid from being received therethrough, upon applied rotational force, [0018] In one configuration, the separation assembly further includes a closure adapted for scaling engagement with the first end of the collection container, with the mechanical separator releasably engaged with a portion of the closure. The mechanical separator may be engaged with a portion of the closure in the first initial position, and the mechanical separator may be engaged with a portion of the sidewall of the collection container in the second sealing position. The closure may include an engagement boss disposed within a portion of the through-hole when the separator body is in the first initial position for forming a fluid seal between a portion of the separator body and the closure. Optionally, at least a portion of the through-hole of the mechanical separator is oriented along the longitudinal axis of the collection container in the first initial position, and the through-hole is oriented perpendicular to the longitudinal axis of the collection container in the second sealing position. Transition of the through-hole from the open position to the closed position may coincide with rotation of the mechanical separator from the first initial position to the second sealing position. The mechanical separator may sealingly engage a portion of the collection container wall in the second sealing position to prevent flow of fluid therethrough or therearound.
[0019] In certain configurations, the separator body further includes a first extended tab adjacent a first opening of the through-hole and a second extended tab adjacent the second opening of the through-hole. The first extended tab and the second extended tab may engage a portion of the sidewall of the collection container in the second sealing position. In other configurations, the separator body further includes an extended tab band disposed about a portion of an outer surface of the float. The extended tab band may engage a portion of the sidewall of the collection container in the second sealing position, and the extended tab band may form a continuous scal with the sidewall of the collection container in the second sealing position.
[0020] In other configurations, the ballast includes a joining structure for engaging a portion of the float, and at least a portion of the float includes a circular outer perimeter having a curved cross-section perpendicular to the through-hole. The outer perimeter of the float may form a continuous seal with the sidewall of the collection container in the second sealing position. Optionally, the float includes a joining structure for engaging a portion of the ballast, and at least a portion of the float includes a circular outer perimeter having a curved cross-section perpendicular to the through-hole, with the outer perimeter of the float forming a continuous seal with the sidewall of the collection container in the second sealing position.
[0021] In accordance with another embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having a first end, a second end, and a sidewall extending therebetween.
The separation assembly further includes a mechanical separator having a separator body having a through-hole defined therein. The separator body includes a first sealing perimeter for providing sealing engagement with a first portion of a collection container while allowing a sample to pass through the through-hole into thc collection container, and a second sealing perimeter for providing sealing engagement with a second portion of the collection container while maintaining a barrier for separation between the first arid second phases.
[0022] The separation assembly may include a closure adapted for sealing engagement with the open end of the collection container, in which the mechanical separator is releasably engaged with a portion of the closure.
[0023] In accordance with another embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having an open end, a closed end, and a sidewall extending therebetween defining an interior. The collection container further defines a longitudinal axis between the open end and the closed end. The separation assembly further includes a closure adapted for sealing engagement with the open end of the collection container, and a post engaged with the closure and adapted for positioning within the interior of the collection container. The post includes a post through-hole aligned along the longitudinal axis of the collection container. The separation assembly also includes a mechanical separator releasably engaged with the post. The mechanical separator includes a separator body having a through-hole defined therein along a through-axis, with the through-hole adaptcd for allowing fluid to pass therethrough. The separator body includes a float, having a first density, and a ballast, having a second density greater than the first density. A portion of the float is connected to a portion of the ballast, and a portion of the post is received within the through-hole of the separator forming a fluid path through the post and the mechanical separator in an initial first position.
[0024] The separator body may further include an initial engagement band circuinferentially disposcd about a portion of thc separator body. The initial engagement band and the float may be formed of the same material, and the initial engagement band may bisect at least a portion of the ballast. Optionally, the separator body is adapted to transition from a first initial position in which a portion of the post is disposcd within the through-hole and the separator body is oriented in an open position for allowing fluid to pass therethrough, to a second sealing position in which the separator body is disengaged from the post and the through-hole is oriented in a closed position for preventing fluid from being received therethrough, upon applied rotational force. Transition of the separator body from the open position to the closed position may include an axial movement of the separator body to disengage from the post, and a rotational movement of the separator body from an initial first position to a sccond sealing position.
[0025] In accordance with yet another embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having an open end, a closed end, and a sidewall extending therebetween defining an interior. The collection container further defines a longitudinal axis between the open end and the closed end. The separation assembly further includes a closure adapted for sealing engagement with the open end of the collection container. The closure includes a receiving end for positioning within the open end of thc collection container, with the receiving end defining an interior cavity and including an undercut protrusion extending into the interior cavity. Thc separation assembly further includes a mechanical separator releasably engaged with the closure. The mechanical separator includes a separator body having a through-hole defined therein along a through-axis, with the through-holc adapted for allowing fluid to pass therethrough. The separator body includes a float, having a first density, and a ballast, having a second density greater than the first density, with a portion of the float connected to a portion of the ballast. The undercut protrusion of the closure may be disposed within the through-hole of the separator, and at least a portion of the separator body may be disposed within the interior cavity of the closure in an initial first position.

[0026] In accordance with yet another embodiment of the present invention, a collection container includes a first region having an open top end and a first sidewall defining a first interior and a first exterior. The collection container also includes a second region having a closed bottom end and a second sidewall defining a second interior and a second exterior.
The first region and the second region may be aligned along a longitudinal axis such that the first interior and the second interior are provided in fluid communication. A
diameter of the fu-st interior may bc greater than a diameter of the second interior, and at least one fluid flute may extend between the first region and the second region to allow passage of fluid therethrough from the first region to the second region.
[0027] In certain configurations, the first exterior has a 16 nun profile and the second exterior has a 13 mm profile. The first interior may be dimensioned to accommodate a mechanical separator therein, and the second interior may be dimensioned to at least partially restrain a portion of the mechanical separator from passing therein absent applied rotational force.
[0028] In accordance with yet another embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having a fast region having an open top end and a first sidewall defining a first interior and a first exterior, and a second region having a closed bottom end and a second sidewall defining a second interior and a second exterior. The first region and the second region may be aligned along a longitudinal axis such that the first interior and the second interior are provided in fluid communication, with a diameter of the first interior being greater than a diameter of the second interior. The separation assembly further includes at least one fluid flute extending between the first region and the second region to allow passage of fluid therethrough from the first region to the second region. The separation assembly may also include a mechanical separator having a float, having a first density, and a ballast, having a second density greater than the first density, with a portion of the float connected to a portion of the ballast. At least a portion of the mechanical separator is prevented from entering the second region in an initial first position, and the mechanical separator is transitioned into the second region upon application of rotational force to a second sealing position.
[0029] The mechanical separator may include a separator body having a through-hole defined therein and adapted for allowing fluid to pass therethrough.
[0030] In accordance with still a further embodiment of the present invention, a separation assembly for enabling separation of a fluid sample into first and second phases includes a collection container having a first end, a second end, and a sidewall extending therebetween defining an interior. The separation assembly further includes a closure adapted for sealing engagement with the open end of the collection container. The separation assembly also includes a mechanical separator releasably restrained by at least one of the closure and the sidewall of the collection container in an initial first position. The mechanical separator includes a scparator body having a through-hole defined therein along a through-axis, with the through-hole adapted for allowing fluid to pass therethrough. The separator body includes a float, having a first density, and a ballast, having a second density greater than the first density, with a portion of the float connected to a portion of the ballast. The separation assembly further includes a carrier releasably engaged with a portion of the mechanical separator in the initial position such that, upon application of rotational force, the separator body transitions from an initial position in which fluid may pass through the through-hole, to a sealing position in which the mechanical separator prevents passage of fluid therethrough or therearound. Also upon application of rotational force, the canier disengages from the mechanical separator.
[0031] In still a further embodiment of the present invention, a separation assembly includes a separation assembly including a collection container having a first end, a second end, and a sidewall extending therebetween defining an interior. The separation assembly also includes a mechanical separator including a float and a ballast and capable of movement from a first position to a sealing position. In the sealing position, a sealing perimeter is established between at least a portion of the interior and thc separator, the sealing perimeter having a varying position about a portion of the interior, with the varying position defining an average sealing height. The mechanical separator also has a maximum height and a minimum height within the collection container, such that the average sealing height is less than the maximum height minus the minimum height.
[0032] The assembly of the present invention is advantageous over existing separation products that utilize separation gel. In particular, the assembly of the present invention will not interfere with analytes, whereas many gels interact with bodily fluids and/or analytes present within a collection container. The assembly of the present invention is also advantageous over existing mechanical separators in that the separator does not require piercing of the separator body to introduce a specimen into the collection container thereby minimizing pre-launch and sample pooling under the closure. The structure of the present mechanical separator also minimizes the loss of trapped fluid phases, such as serum and plasma within the separator body. Additionally, the assembly of the present invention does not require complicated extrusion techniques during fabrication, and may optimally employ two-shot molding techniques.
[0033] Further details and advantages of the invention will become clear from the following detailed description when read in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] FIG. 1 is a partial cross-sectional side view of a conventional mechanical separator.
[00351 FIG. 2 is a perspective view of a mechanical separator assembly having a float defining a through-hole and a ballast in accordance with an embodiment of the present invention.
[0036] FIG. 3 is an alternative perspective view of the mechanical separator assembly of FIG. 2.
[0037] FIG. 4 is a top view of the mechanical separator of FIG. 2.
[0038] FIG. 5 is a side view of the mechanical separator of FIG. 2.
[00391 FIG. 6 is a cross-sectional view of the mechanical separator of FIG. 2 taken along line A-A of FIG. 5.
[0040] FIG. 7 is a front view of the mechanical separator of FIG. 2.
[0041] FIG. 8 is a cross-sectional view of the mechanical separator of FIG. 2 taken along line B-B of FIG. 7.
[0042] FIG. 9 is a top view of an alternative mechanical separator having a float defining a through-hole and a ballast, with first and second extended tabs forming a substantially convex upper float surface in accordance with an embodiment of the present invention.
[0043] FIG. 10 is a side view of the mechanical separator of FIG. 9.
[0044] FIG. 11 is a cross-sectional view of the mechanical separator of FIG. 9 taken along line C-C of FIG. 10.
[0045] FIG. 12 is a front view of the mechanical separator of FIG. 9.
[0046] FIG. 13 is a cross-sectional view of the mechanical separator of FIG. 9 taken along line 1)-D of FIG. 12.
[0047] FIG. 14 is a perspective view of an alternative mechanical separator having a float defining an elliptical through-hole and a ballast in accordance with an embodiment of the present invention.
[0048] FIG. 15 is an alternative perspective view of the mechanical separator of FIG. 14.
[0049] FIG. 16 is a top view of the mechanical separator of FIG, 15.
[0050] FIG. 17 is a side view of the mechanical separator of FIG. 15.

[0051] FIG. 18 is a cross-sectional view of the mechanical separator of FIG.
15 taken along line E-E of FIG. 17.
[0052] FIG. 19 is a front view of the mechanical separator of FIG. 15.
[0053] FIG. 20 is a cross-sectional view of the mechanical separator of FIG.
15 taken along line F-F of FIG. 19.
[0054] FIG. 20A is a perspective view of a mechanical separator having a spheroid shaped body and a reduced separation between the first extended tab and the second extended tab in accordance with an embodiment of the present invention.
[0055] FIG. 21 is a cross-sectional view of an alternative mechanical separator having an elliptical interior taken along a similar cross-sectional line as that shown in FIG. 18.
[0056] FIG. 22 is a partial perspective view of the mechanical separator having an elliptical interior as shown in FIG. 21.
[0057] FIG. 23 is a cross-sectional view of an alternative mechanical separator having an elliptical through-hole taken along a similar cross-sectional line as that shown in FIG. 18.
[0058] FIG. 24 is a partial perspective view of the mechanical separator having an elliptical through-hole as shown in FIG. 23.
[0059] FIG. 25 is a cross-sectional view of an alternative mechanical separator having a substantially round interior and side-cuts taken along a similar cross-sectional line as that shown in FIG. 18.
[0060] FIG. 26 is a partial perspective view of the mechanical separator having a substantially round interior and side-cuts as shown in FIG. 25.
[0061] FIG. 27 is a partial cross-sectional side view of a mechanical separator of the present invention affixed to a closure in accordance with an embodiment of the present invention.
[0062] FIG. 28 is a partial cross-sectional side view of a mechanical separator disposed within a collection container in an initial position for allowing fluid to pass through the through-hole in accordance with an embodiment of the present invention.
[0063] FIG. 29 is a partial cross-sectional side view of a mechanical separator disposed within a collection container as shown in FIG. 28 in a sealing position for establishing a barrier between lighter and denser phases within a collection container after application of rotational force in accordance with an embodiment of the present invention.
[0064] FIG. 30 is a perspective view of a mechanical separator in accordance with an embodiment of the present invention having a seal line for engagement with a collection container in an initial position.

[0065] FIG. 31 is a perspective view of the mechanical separator of FIG. 30 having a seal line for engagement with a collection container in a sealing position.
[0066] FIG. 31A is a perspective view of a mechanical separator having a partially scalloped surfacc in accordance with an embodiment of the present invention.
[0067] FIG. 31B is a front view of the mechanical separator of FIG. 31A.
[0068] FIG. 31C is a perspective view of a mechanical separator in accordance with an embodiment of the present invention.
[0069] FIG. 31D is a top view of the mechanical separator of FIG. 31C.
[0070] FIG. 31E is a front view of the mechanical separator of FIG. 31C.
[0071] FIG. 31F is a cross-sectional view of the mechanical separator of FIG.
31C taken along line 31F-31F of FIG. 31E.
[0072] FIG. 31G is a side view of the mechanical separator of FIG. 31C, [0073] FIG. 3111 is a cross-sectional view of the mechanical separator of FIG.
31C taken along line 31H-31H of FIG. 31G.
[0074] FIG. 311 is a bottom view of the mechanical separator of FIG. 31C.
[0075] FIG. 32 is a perspective view of a mechanical separator having an initial engagement band in accordance with an embodiment of the present invention.
[0076] FIG. 33 is an alternative perspective view of a mechanical separator having an initial engagement band as shown in FIG. 32.
[0077] FIG. 34 is a side view of the mechanical separator having an initial engagement band as shown in FIG. 33.
[0078] FIG. 35 is a partial cross-sectional side view of the mechanical separator having an initial engagement band of FIG. 33 engaged with a portion of the sidewall of a collection container and closure in accordance with an embodiment of the present invention.
[0079] FIG. 35A is a perspective view of a mechanical separator having an extended tab band in accordance with an embodiment of the present invention.
[0080] FIG. 35B is a left side view of the mechanical separator of FIG. 35A.
[0081] FIG. 35C is a front view of the mechanical separator of FIG. 35A.
[0082] FIG. 35C1 is a cross-sectional view of the mechanical separator of FIG.
35A taken along line 35C1-35C1 of FIG. 35B.
[0083] FIG. 35D is a cross-sectional view of the mechanical separator of FIG.
35A taken along line 35D-35D of FIG. 35C.
[0084] FIG. 35E is a perspective view of a mechanical separator having an alternative extended tab band in accordance with an embodiment of the present invention, [0085] FIG. 35F is a perspective view of a mechanical separator having a joining structure in accordance with an embodiment of the present invention.
[0086] FIG. 35G is a front view of fine mechanical scparator of FIG. 35F.
[0087] FIG. 35H is a cross-sectional view of the mechanical separator of FIG.
35G taken along line 35H-351I of FIG. 35F.
[0088] FIG. 351 is a top view of the mechanical separator of FIG. 35F.
[0089] FIG. 35J is a schematic front view of the mechanical separator of FIG.

disposed within a collection container in various states of descent within the collection container in accordance with an embodiment of the present invention.
[0090] FIG. 35K is a schematic front view of the mechanical separator of FIG.
35J in a sealing position in accordance with an embodiment of the present invention.
[0091] FIG. 35L is a perspective view of a mechanical separator having an alternative joining structure in accordance with an embodiment of the present invention.
[0092] FIG. 35M is a front view of the mechanical separator of FIG. 35L.
[0093] FIG. 35N is a perspective view of a mechanical separator having an alternative joining structure in accordance with an embodiment of the present invention.
[0094] FIG. 350 is a front view of the mechanical separator of FIG. 35N.
[0095] FIG. 36 is a partial cross-sectional side view of a mechanical separator having a circuitous though-hole in an initial position in accordance with an embodiment of the present invention.
[0096] FIG. 37 is a partial cross-sectional side view of the mechanical separator of FIG.
36 having a circuitous though-hole in a sealing position in accordance with an embodiment of the present invention.
[0097] FIG. 38 is a representational cross-section of a mechanical separator having a float and a ballast separated by a thermoplastic elastomer section defining a through-hole in an initial resting position in accordance with yet another embodiment of the present invention.
[0098] FIG. 39 is a representational cross-section of the mechanical separator of FIG. 38 having a float and a ballast separated by a thermoplastic elastomer section defining a through-hole in an activated position during application of rotational force.
[0099] FIG. 40 is a cross-sectional side view of a separation assembly having a mechanical separator engaged with a portion of a collection container having a closure engaged therewith in accordance with an embodiment of the present invention.

[00100] FIG. 41 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a post which is engaged with an undercut of closure in accordance with an embodiment of the present invention.
[001011 FIG. 42 is a partial cross-sectional perspective of the closure of FIG. 41.
[00102] FIG. 43 is a perspective front view of the post of FIG. 41.
[00103] FIG. 44 is a perspective rear view of the post of FIG. 41.
[00104] FIG. 45 is a side view of a collection container having a first region, a second region, and a plurality of fluid flutes in accordance with an embodiment of the present invention.
[00105] FIG. 46 is a cross-sectional partial side view of a separation assembly having a mechanical separator disposed within the collection container of FIG. 45 in accordance with an embodiment of the present invention.
[00106] FIG. 46A is a cross-sectional side view of an alternative collection container for use with a mechanical separator in accordance with an embodiment of the present invention.
[00107] FIG. 47 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged within a portion of a closure in accordance with an embodiment of the present invention.
[00108] FIG. 48 is a partial cross-sectional perspective of the closure of FIG. 47.
[00109] FIG. 49 is a cross-sectional side view of a separation assembly having a mechanical separator engaged with a closure having an engagement boss in accordance with an embodiment of the present invention.
[00110] FIG. 50 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a closure having an alternative engagement boss in accordance with an embodiment of the present invention.
[00111] FIG. 51 is a cross-sectional side view of the separation assembly of FIG. 50 having a sealant disposed between a portion of the mechanical separator and a portion of the closure in accordance with an embodiment of the present invention.
[00112] FIG. 52 is a close-up sectional view of the sealant shown in FIG. 51.
[00113] FIG, 53 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a closure having an alternative engagement boss in accordance with an embodiment of the present invention.
[00114] FIG. 54 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a closure having an alternative engagement boss in accordance with an embodiment of the present invention.

[00115] FIG. 55 is a perspective view of the closure of FIG. 54 having an engagement boss including a plurality of depending feet.
[00116] FIG. 56 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a molding insert in accordance with an embodiment of the present invention.
[00117] FIG. 57 is a perspective view of the molding insert of FIG. 56.
[00118] FIG. 58 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a molding insert in accordance with an embodiment of the present invention.
[00119] FIG. 59 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a molding insert in accordance with an embodiment of the present invention.
[00120] FIG. 60 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a carrier engaged with a portion of the closure in accordance with an embodiment of the present invention.
[00121] FIG. 61 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with an alternative carrier engaged with a portion of the closure in accordance with an embodiment of the present invention.
[00122] FIG. 62 is a perspective view of thc carrier of FIG. 61.
[00123] FIG. 63 is a cross-sectional side view of a separation assembly having a mechanical separator engaged with a carrier in an initial position in accordance with an embodiment of the present invention.
[00124] FIG. 64 is a cross-sectional side view of the separation assembly of FtG. 63 having a mechanical separator in a sealing position disengaged from the carrier after application of rotational force in accordance with an embodiment of the present invention.
[00125] FIG. 65 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with an alternative carrier in an initial position in accordance with an embodiment of the present invention.
[00126] FIG. 66 is a cross-sectional side view of the separation assembly of FIG. 65 having a mechanical separator in a sealing position disengaged from the carrier after application of rotational force in accordance with an embodiment of the present invention.
[00127] FIG. 67 is a cross-sectional side view of an alternative separation assembly having a mechanical separator engaged with a dissolvable carrier in an initial position in accordance with an embodiment of the present invention.

[00128] FIG. 68 is a cross-sectional side view of the separation assembly of FIG. 67 having a mechanical separator in a scaling position illustrating the carrier in the fully dissolved state after application of rotational force in accordance with an embodiment of the present invention.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[00129] For purposes of the description hereinafter, thc words "upper", "lower", "right", "left", "vertical", "horizontal", "top", "bottom", "lateral", "longitudinal", and like spatial terms, if used, shall relate to the described embodiments as oriented in the drawing figures.
However, it is to be understood that many alternative variations and embodiments may be assumed except where expressly specified to the contrary. It is also to be understood that the specific devices and embodiments illustrated in the accompanying drawings and described herein are simply exemplary embodiments of the invention.
[00130] The mechanical separator of the present invention is intended for use with a collection container for providing separation of a sample into higher and lower density phase components, as will be discussed herein. For example, the present mechanical separator can be used to provide a separation of serum or plasma from whole blood through the use of differential buoyancy to cause a sealing area to contract when submerged in a specimen exposed to elevated gravitational forces through applied rotational force or centrifugation. In one embodiment, the elevated gravitational forces can be provided at a rate of at least 2,000 revolutions/minute, such as at least 3,400 revolutions/minute.
[00131] Referring to FIGS. 2-8, the mechanical separator 40 of the present invention includes a separator body 41 including a float 42 and a ballast 44 connected to the float 42.
In one embodiment, the float 42 has a first density and the ballast 44 has a second density, with the second density being greater than the first density. In another embodiment, the float 42 has a first buoyancy and the ballast 44 has a second buoyancy, with the first buoyancy being greater than the second buoyancy. In one embodiment, it is desirable that the float 42 of the mechanical separator 40 be made from a material having a density that is lighter than the liquid or specimen intended to be separated into two phases. For example, if it is desired to separate human blood into senim and plasma, then it is desirable that the float 42 have a density of no more than about 1.020 g/ce. In one configuration, the float 42 of the mechanical separator 40 may be extruded and/or molded of a resiliently deformable and self-sealable material, such as a thermoplastic elastomer (TPE). In yet another embodiment, the float 42 may be extruded and/or molded of a resiliently deformable material that exhibits good sealing characteristics when contact is established with a collection container, as will be discussed herein. Maintenance of the float density within the specified tolerances is more easily obtained by using a standard material that does not require compounding with, for example, glass micro-spheres in order to reduce the material density.
E001321 The mechanical separator 40 also includes a through-hole 46 defmed therein, such as along a through-axis T of the separator body 41. As shown in FIGS. 3, 5, and 8, the through-hole 46 may extend through the entire separator body 41 and includes a first opening 48 and a second opening 50 aligned along the through-axis T. In one configuration, the through-hole 46 bisects or substantially bisects the volumetric center of the separator body 41. In one embodiment, the through-hole 46 is disposed entirely within the float 42. In a further embodiment, the float 42 may further include a first extended tab 52 adjacent the first opening 48 of the through-hole 46, and a second extended tab 54 adjacent the second opening 50 of the through-hole 46. The first extended tab 52 and/or the second extended tab 54 may be co-formed with the float 42, forming a portion of the float 42 itself. In another configuration, the first extended tab 52 and/or the second extended tab 54 may be separately formed and subsequently joined with the float 42. The first extended tab 52 and the second extended tab 54 may be provided above, such as substantially above, the through-axis T of the separator body 41. The first extended tab 52 and the second extended tab 54 may also be provided about, such as substantially about, a portion of the through-hole 46, such as in an outwardly-extending arcuate shape about an upper portion 56 of the through-hole 46. The first extended tab 52 and the second extended tab 54 may extend outwardly from the float 42 in a direction parallel or substantially parallel to the through axis T of the separator body 41, such that the first extended tab 52 and the second extended tab 54 may have the same shape and curvature or substantially the same shape and curvature. In yet another embodiment, as shown in FIG. 8, the first extended tab 52 includes a first outermost edge 68 at the upper outermost portion of a first side of the through-hole 46, and the second extended tab 54 includes a second outeimost edge 70 at the corresponding upper outermost portion of a second side of the through-hole 46. In one configuration, the first outermost edge 68 extends outwardly a distance that is greater than the lower outcrmost portion 72 of the first side of the through-hole 46. The second outermost edge 70 also extends outwardly a distance that is greater than the corresponding lower outermost portion 74 of the second side of the through-hole 46. Accordingly, the diameter DI of the separator body 41 taken about the first extended tab 52 and the second extended tab 54 about an upper portion of the through-hole 46 is slightly greater than the diameter D2 of the separator body 41 taken about the lower portion of the through-hole 46 defined by the lower outermost portions 72, 74.

[00133] In one embodiment, the float 42 has an exterior surface 58 that is generally arcuate in shape, such as at least partially rounded or substantially rounded, and a joining surface 60, shown in FIGS. 6 and 8, adapted for engagement with a portion of' the ballast 44. The ballast 44 also includes an exterior surface 62 that is also generally arcuate in shape, such as at least partially rounded or substantially rounded, and a contact surface 64, also shown in FIGS. 6 and 8, that is adapted for joining with the joining surface 60 of the float 42. In one embodiment, when taken together, thc exterior surface 58 of the float 42 and the exterior surface 62 of the ballast 44 form a generally round exterior, such as a spheroid shape. It is understood herein that the term "spheroid shape" may include other configurations, in addition to a perfect sphere, that are aspects of the invention which may provide slightly non-uniform diameters taken through the mid-point. For example, different planes taken through the float 42 and ballast 44 which bisect the midpoint of the mechanical separator 40 may have varying diameter and still give rise to a generally rounded or ball-like mechanical separator 40 having a spheroid shape. Tn one embodiment, the float 42 and the ballast 44 may be separately formed and subsequently assembled. In another embodiment, the float 42 and the ballast 44 may bc co-formed, such as co-extruded and/or co-molded, such as by a two-shot or multi-shot molding process such that both components are integrally linked together to forrn ,a complete separator body 41. In another configuration, this integral linkage between the float 42 and the ballast 44 may be created by a material bond between the two components, by a mechanical interlock, or by a combination of a material bond and a mechanical interlock. In addition, the float 42 and the ballast 44 may be linked together by a separate post-molding operation, such as adhesive, heat-staking, and/or ultrasonic welding. As shown in FIGS. 6 and 8, the ballast 44 may include an attachment protrusion 66 which assists in the engagement of the ballast 44 and the float 42.
[00134] In one embodiment, it is desirable that the ballast 44 of the mechanical separator 40 be made from a material having a higher density than the liquid intended to be separated into two phases. For example, if it is desired to separate human blood into serum and plasma, then it is desirable that the ballast 44 have a density of at least 1.029 g/cc. In one embodiment, the ballast 44 can be formed from mineral filled polypropylene. It is anticipated herein that both the float 42 and the ballast 44 could be formed of various other materials with sufficient biocompatibility, density stability, additive compatibility, and neutrality to analyte interactions, adsorption, and leachability.
[00135] Due to the differential densities of the float 42 and the ballast 44, the mechanical separator 40 includes a center of mass R that is offset from the center of volume R1 of the separator body 41. Specifically, the volume of the separator body 41 accounted for by the float 42 may be significantly greater than the volume of the separator body 41 accounted for by the ballast 44. Accordingly, in certain embodiments, thc center of mass R
of the scparator body 41 may be offset from the through-hole 46.
[00136] In accordance with another embodiment of the present invention, as shown in FIGS. 9-13, the mechanical separator 140 includes a separator body 141 having a float 142 and a ballast 144 with a through-hole 146 defined within the float 142, as discussed above.
In this configuration, shown specifically in FIGS. 10 and 13, the first extended tab 152 and the second extended tab 154, taken with an upper portion 155 of the float 142, form a substantially convex upper float surface 157. As shown in FIG. 9, the profile of the separator body 141 is slightly off-spherical such that a diameter D3 of the separator body extending between diagonally off-set endpoints 158, 159 of the through-hole 146 extending along the through-axis T, is slightly larger than a diameter D4 of the separator body extending between outermost opposing endpoints 160, 161 tangent to the perimeter of the separator body 141 and perpendicular to the through-hole 146. Accordingly, the endpoints (diagonally off-set endpoints 158, 159, and second diagonally off-set endpoints 158A, 159A) may each include a thickened area of material, such as TPE.
[00]37] In accordance with another embodiment, as shown in FIGS. 14-20, the mechanical separator 240 includes a separator body 241 having a float 242 and a ballast 244 with a through-hole 246 defined within the float 242, as discussed above. In this configuration, the through-hole 246 may have a substantially elliptical cross-section, as specifically shown in FIGS. 18-19. In one embodiment, the major axis M1 of the ellipse, shown in FIG. 18, is oriented perpendicular to the through-axis T, shown in FIG. 17. By extending the major axis M1 of the ellipse perpendicular to the through-axis T, the float 242 may be adapted for increased elongation in the direction of the minor axis M2 (shown in FIG.
18) of the ellipse upon application of rotational force, as will be discussed herein.
[00138] In this configuration, the curvature of the first extended tab 252 and the curvature of the second extended tab 254 are elongated to substantially mimic at least a portion of the elliptical first opening 248 and second opening 250 of the through-axis T, respectively. In another embodiment, the first extended tab 252 is at least partially curved in shape, such as having a convex shape, and is provided adjacent the upper portion of the first opening 248 of the through-hole 246. The second extended tab 254 may also be at least partially curved in shape, such as having a convex shape, and may be provided adjacent the upper portion of the second opening 250 of the through-hole 246.

[00139] As shown in FIG. 20A, the mechanical separator 240A includes a separator body 241A having a float 242A and a ballast 244A with a through-hole 246A defined within the float 242A, as discussed above. In this configuration, the first extended tab 252A and the second extended tab 254A may have an elliptical profile that is substantially coincident to the diameter 243A of the separator body 241A at the edges of the through-hole 246A, and slightly offset from the diameter 243A at the apex 247A of the first and second extended tabs 252A, 254A. In this configuration, the first extended tab 252A and the second extended tab 254A may include enlarged fillets 280A positioned at the edges of the first and second extended tabs 252A, 254A adjacent the through-hole 246A to assist in the formation of a barrier against a portion of the tube wall in the sealing position, as described herein. The enlarged fdlcts 280A may function to facilitate the shedding of cells around the mechanical separator during application of applied rotational force, as described herein.
The enlarged fillets 280A may also include a region of the first and second cxtended tabs 252A, 254A
having an increased thickness and/or diameter, such as a widened taper adjacent the ends of the first and second extended tabs 252A, 254A and extending along at least a portion of the through-hole 246A.
[001401 As shown in FIGS. 21-22, a mechanical separator 340 of the present invention includes a float 342 and a ballast 344, and may include an elliptical interior 360 defining a substantially cylindrical through-hole 346. In this configuration, the elliptical interior 360 may include a filler material 362 dimensioned to fill the elliptical interior 360 leaving a substantially cylindrical though-hole 346. In one embodiment, the filler material 362 may be a TPE material or other sufficiently flexible material. Alternatively, as shown in FIGS. 23-24, a mechanical separator 440 of the present invention, including a float 442 and a ballast 444, may include an elliptical interior 460 defining an elliptical through-hole 446. In yet another configuration, a mechanical separator 540 of the present invention, including a float 542 and a ballast 544, may include a through-hole 546 having a circular cross-section and a cylindrical shape. Optionally, the float 542 may also include a slit 548 or plurality of slits 548, such as adjacent an interface 550 with the ballast 544. The inclusion of a slit 548 or a plurality of slits 548 defined within the float 542 may provide for increased elongation of the float 542 upon application of rotational force, as will be discussed herein.
[00141] As shown in FIG. 27, the mechanical separator 40 of the present invention may be provided as a portion of a separation assembly 80 for separating a fluid sample into first and second phases within a collection container 82 having a closure 84.
Specifically, the collection container 82 may be a sample collection tube, such as a proteomics, molecular diagnostics, chemistry sample tube, blood, or other bodily fluid collection tubc, coagulation sample tube, hematology sample tube, and the like. Desirably, collection container 82 is an evacuated blood collection tube. In one embodiment, the collection container 82 may contain additional additives as required for particular testing procedures, such as protcase inhibitors, clotting agents, and the like. Such additives may be in particle or liquid form and may be sprayed onto the cylindrical sidewall 86 of the collection container 82 or located at the bottom of the collection container 82. The collection container 82 includes a closed bottom end 88, an open top end 90, and a cylindrical sidewall 92 extending therebetween. The cylindrical sidewall 92 includes an inner surface 94 with an inside diameter extending substantially uniformly from the open top end 90 to a location substantially adjacent the closed bottom end 88 along the longitudinal axis L of the collection container 82.
[001421 The collection container 82 may be made of one or more than one of the following representative materials: polypropylene, polyethylene tcrephthalate (PET), glass, or combinations thereof. The collection container 82 can include a single wall or multiple wall configurations. Additionally, the collection container 82 may be constructed in any practical size for obtaining an appropriate biological sample. For example, the collection container 82 may be of a size similar to conventional large volume tubes, small volume tubes, or microtainer tubes, as is known in the art. In one particular embodiment, the collection container 82 may be a standard 13 ml evacuated blood collection tube, as is also known in the art.
[00143] The open top end 90 is structured to at least partially receive the closure 84 therein to form a liquid impermeable seal. The closure 84 includes a top end 96 and a bottom end 98 structured to be at least partially received within the collection container 82. Portions of the closure 84 adjacent the top end 90 define a maximum outer diameter which exceeds the inside diameter of the collection container 82. In one embodiment, the closure 84 includes a pierceable resealable septum 100 penetrable by a needle cannula (not shown).
Portions of the closure 84 extending downwardly from the bottom end 98 may taper from a minor diameter which is approximately equal to, or slightly less than, the -inside diameter of the collection container 82 to a major diameter that is greater than the inside diameter of the collection container 82 at the top end 96. Thus, the bottom end 98 of the closure 84 may be urged into a portion of the collection container 82 adjacent the open top end 90. The inherent resiliency of closure 84 can insure a sealing engagement with the inner surface 94 of the cylindrical sidewall 86 of the collection container 82. In one embodiment, the closure 84 can be formed of a unitarily molded elastomeric material, having any suitable size and dimensions to provide scaling engagement with the collection container 82. Optionally, the closure 84 may be at least partially surrounded by a shield, such as a Hemogarde Shield commercially available from Becton, Dickinson and Company.
[00144] As shown in FIG. 27, the mechanical separator 40 of the present invention may be oriented within the collection container 82 in an initial position in which the through-hole 46 of the mechanical separator 40 is aligned with the open top end 90 of the collection container 82. In the initial position, the through-hole 46 is adapted for allowing fluid to pass thercthrough, such as from a needle cannula (not shown) which has pierced the picreeable septum 100 of the closure 84 and is provided in fluid communication with the interior of the collection container 82. The mechanical separator 40 may also be releasably engaged with a portion of the closure 84 such that the separator body 41 may transition from the initial position, as shown in FIGS. 27-28, to a sealing position, as shown in FIG. 29.
In the initial position, the through-hole 46 is oriented in an open position for allowing fluid to pass thercthrough in the direction indicated in FIG. 28 by flow arrow F. Referring to FIG. 27, the initial open position of the through-hole 46 is substantially aligned with the longitudinal axis L of the collection container 82. Referring to FIG. 29, upon application of rotational force, such as during centrifuge, the mechanical separator 40 deforms sufficiently to disengage from engagement with the closure 84 and rotate in the direction shown by directional arrow D of FIG. 29 to the sealing position in which the through-hole 46 is in a substantially closed position. In the substantially closed position, the float 42 including the first extended tab 52 and the second extended tab 54 form a sealing engagement with the inner surface 94 of the collection container 82 substantially preventing fluid from being received through the through-hole 46 or around the separator body 41.
[00145] In one configuration, the through-hole 46 is substantially aligned with the open top end 90 of the collection container 82 along at least a portion of the longitudinal axis L in the open position, and :the through-hole 46 is substantially aligned perpendicular to the longitudinal axis in the closed position. It is noted that transition of the through-hole 46 from the open position to the closed position coincides with the rotation of the mechanical separator 40 from a first initial position to a second closed position. In another configuration, the mechanical separator 40 is engaged with a portion of the closure 84 in the first initial position, and the mechanical separator 40 is engaged with a portion of the sidewall 86 of the collection container 82 in the second sealing position. Referring again to FIG. 27, the closure 84 may include an engagement boss 102 for engagement with the mechanical separator 40. In one configuration, the engagement boss 102 is disposed within a portion of the through-11010 46 when the separator body 41 is in the first initial position for forming a fluid seal between a portion of the separator body 41 and the closure 84.
f00146] In the initial position, the mechanical separator 40 may be attached to the closure 84 be means of a mechanical snap created by an undercut in the through-hole 46 which controls the release load of the mechanical separator 40. When the mechanical separator 40 is attached to the closure 84, it forms a seal with the sidewall 86 of the collection container 82 along a first sealing perimeter 104 as shown in FIG. 30. During specimen draw into the collection container 82, the first sealing perimeter 104 prevents the accumulation of blood between the mechanical separator 40 and the closure 84. This reduces the formation of clots and/or fibrin strands which may disrupt function of the mechanical separator 40. Upon application of rotational force and transition of the mechanical separator 40 as shown in FIG.
29, the mechanical separator 40 experiences a rotational moment while still attached to thc closure 84 and, after release from the closure 84, rotates approximately 900 to become oriented with the ballast 44 facing the bottom end 88 of the collection container 82.
[00147] Once the mechanical separator 40 contacts the fluid contained within the collection container 82, air that occupies the through-hole 46 is progressively displaced by the fluid as the device submerges. When thc mechanical separator 40 is submerged in the fluid, the float 42 has a greater buoyancy than the ballast 44, which generates a differential force across the mechanical separator. During centrifugation, the differential force causes the float 42 component to elongate and contract away from the sidewall 86 of the collection container 82, thereby reducing the effective diameter and opening a communicative pathway for the flow of fluid, such as higher and lower density phase components, past the separator body 41. It is noted that the float 42 may be adapted for deformation in a direction substantially perpendicular to the through-hole 46. As the applied rotational force is removed, the float 42 recovers and the sealing area defined by thc float 42 and the first extended tab 52 and the second extended tab 54 re-expands to seal against the inner surface 94 of the collection container along a second sealing perimeter 106, as shown in FIG. 31.
Accordingly, the mechanical separator 40 is adapted to prevent fluid from passing between or around the separator body 41 and the collection container 82, and also prevents fluid from passing through the through-hole 46, effectively establishing a barrier. The second sealing perimeter 106 establishes a barrier between higher and lower density phases within the sample.
[00148] As shown in FIGS. 31A-31B, the mechanical separator 140A includes a separator body 141A having a float 142A and a ballast 144A with a through-hole 146A
defined within the float 142A, as discussed above. In this configuration, thc float 142A may include a partially scalloped region 150A for providing a surface to improve surface shedding of debris during use. As discussed herein, when the separator 140A is submerged within a fluid sample, such as blood, certain blood constituents, such as fibrin or cells, may adhere to or become otherwise trapped on the upper surface of the float 142A. In accordancc with the present embodiment, the float 142A may include a scalloped region 150A for increasing the surface shedding. In another embodiment, the float 142A may include opposing scalloped regions 150A, such as shown in FIG. 31B. The scalloped region 150A may include any curved shape suitable to increase the surface shedding of the float, such as elliptical, oval, curved, and the like.
[00149] In this configuration, the separator body 141A may also include the first extended tab 152A and the second extended tab 154A having enlarged fillets 180A
positioned at the edges of the first and second extended tabs 152A, 154A adjacent the through-hole 146A to assist in the formation of a barrier against a portion of the tube wall in the scaling position, as described herein. The enlarged fillets 180A may include a region of the first and second extended tabs 152A, 154A having an increased thickness and/or diameter, such as a widened taper adjacent the ends of the first and second extended tabs 152A, 154A and extending along at least a portion of the through-hole 146A. In one configuration, the enlarged fillets 180A
may facilitate shedding of cells around the mechanical separator body 141A
during application of applied rotational force, as described herein.
[00150] In accordance with a further embodiment of the present application, as shown in FIGS. 31C-311, the mechanical separator 40D includes a separator body 41D
having a float 42D and a ballast 44D with a through-hole 46D defined within the float 42D, as discussed above. In this configuration, the separator body 41D may have a substantially egg-shaped outer perimeter for improving the barrier seal between the mechanical separator 40D and the sidewall of the collection container in the sealing position., such as is shown in FIGS. 29 and 68.
[00151] In this configuration, the diameter D5 of the separator body 41D, specifically the float 42D as shown in FIGS. 31D and 31G, taken across the float 42D in the direction along the through-axis Taxis of the through hole 46D, as shown in FIG. 31F, may be less than the diameter D6 of the separator body 41D, specifically the float 42D as shown in FIG. 31D, taken across the float 42D in the direction perpendicular to the through-axis Taxis of the through hole 46D, as shown in FIG. 31F. In this configuration, the diameter D7 of the separator body 41D, specifically the float 42D as shown in FIG. 31D, taken across the float 42D at an angle of 45 to the through-axis Taxis may be larger than the through-hole 46D, or may be greater than the diameters 115 and D6 of the separator body 41D. Also in this configuration, the diameter Ds of the ballast 44D taken across the ballast 44D
along the through-axis Taxis of the through-hole 46D, as shown in FIG. 31F, may be less than any of the diameters 115, D6, or D7 of the separator body 41D.
[00152] The provision of a float 42D having an increased diameter with respect to the ballast 44D may provide for a mechanical separator 40D having an increased volume of lower density material, such as TPE, for displacing against a sealing surface as described herein. This embodiment may also include an extended tab band, as discussed below with respect to FIGS. 35A-35E, and/or an initial engagement band, as discussed below with respect to FIGS. 33-35.
[00153] Referring to FIGS. 32-35, in a further configuration, the mechanical separator 40 may further include an initial engagement band 116 circumferentially disposed about the separator body 41. in a further configuration, the initial engagement band 116 may be disposed about the separator body 41 in a direction substantially perpendicular to the through-hole 46. The initial engagement band 116 may be continuously provided about the separator body 41, or may optionally bc provided in segments about the separator body 41.
In yet a further configuration, the float 42 and the initial engagement band 116 may be formed from the same material, such as TPE. The initial engagement band 116 may be provided such that a first portion 42A of the float 42 forms the initial engagement band 116, and a second portion 42B substantially bisects the ballast 44.
[00154] As shown specifically in FIG. 35, the initial engagement band 116 provides an interference engagement between the separator body 41 and the inner surface 94 of the collection container 82. In this configuration, a first scaling perimeter 104 about the separator body 41 is inline with the initial engagement band 116. This first sealing perimeter 104 assists in maintaining the separator body 41 in proper alignment with the open top end 90 of the collection container 82, such that fluid entering the collection container 82 from a cannula (not shown) disposed through the pierceable septum 100 will pass through the first opening 48 of the separator body 41, through the through-hole 46, and out the second opening 50.
[00155] In accordance with yet another embodiment of the present invention, as shown in FIGS. 35A-35E, the mechanical separator 40C includes a separator body 41C
having a float 42C and a ballast 44C. The separator body 41C includes a through-hole 46C
defined therein, such as defined entirely within the float 42C. In this configuration, the float 42C may include an extended tab band 50C disposed about an outer surface 52C of the float 42C. In one embodiment, the extended tab band 50C may include a first extended portion adjacent a first opening 56C of the through-hole 46C, and a second extended portion 58C
adjacent the second opening 60C of the through-hole 46C. In this configuration, the first extended portion 54C and the second extended portion 58C may be provided substantially adjacent to at least a portion of the first opening 56C and the second opening 60C, respectively. The first extended portion 54C and the second extended portion 58C may each have a generally concave downwardly-directed orientation.
[00156] The first extended portion 54C and the second extended portion 58C may also be provided substantially about a portion of the through-hole 46C, such as in an outwardly-extending arcuate shape about an upper portion of the through-hole 46C. A
portion of the first extended portion 54C and a portion of the sccond extended portion 58C
may cxtcnd outwardly from the float 42C in a direction substantially parallel to the through axis TA of the separator body 41C, such that the first extended portion 54C and the second extended portion 58C may have substantially the same shape and curvature.
[00157] The extended tab band 50C may also include joining portions 62C
disposcd between and connecting the first extended portion 54C and thc second extended portion 58C
on both sides of the separator body 41C. The joining portions 62C may each have a generally concave upwardly-directed orientation. In one embodiment, the joining portions 62C, the first extended portion 54C, and the second extended portion 58C are continuous therewith, forming a generally "rope-like" appearance wrapped around a portion of the float 42C. In a further embodiment, the joining portions 62C, the first extended portion 54C, and the second extended portion 58C form a continuous sine function shape about a portion of the outer surface 52C of the float 42C. In another embodiment, the extended tab band 50C may be co-formed with the float 42C, forming a portion of the float 42C itself. In an alternative embodiment, the extended tab band 50C may be separately formed and subsequently joined with the float 42C. In certain configurations, both the float 42C and the extended tab band 50C are made of a lower density material, such as TPE, and the ballast 44C may bc formed of a higher density material, such as PET.
[00158] In one embodiment, shown specifically in FIGS. 35C and 35C1, the joining portions 62C may each have approximately the same thickness Ts. In another embodiment, the first extended portion 54C and the second extended portion 58C may also have approximately the same thickness Ts. The cross-section of the extended tab band 50C may have any suitable sealing shape such as rounded, squared, ribbed, or the like.
It is also contemplated herein, that multiple extended tab bands 50C rnay be disposed about the outer surface 52C of the float 42C. Referring to FIGS. 35B and 35D, the first extended portion 54C and the second extended portion 58C may include a thickened shelf region, 54C1 and 58C1, respectively, defining a generally spline or saddle shape with the upper portion 64C of the float 42C. The upper portion 64C of the float 42C and the extended tab band 50C may be particularly configured to maximize the surface shedding of debris during use. As discussed herein, when the separator 40C is submerged within a fluid sample, such as blood, certain blood constituents, such as fibrin or cells, may adhere to or become otherwise trapped on the upper surface of the float 42C. The specific shaping of the extended tab band 50C is intended to minimize the trapping of debris during use.
[001591 In yet another embodiment, as shown in FIG. 35E, the extended tab band may include a first extended portion 54C, a second extended portion 58C, and joining portions 62C connecting the first extended portion 54C and the second extended portion 58C
on both sides of the float 42C so as to fonn a continuous structure about the outer surface 52C of the float 42C. In this configuration, the thickened shelf region 54C1 of the first extended portion 54C and thc thickened shelf region 58C1 of the second extended portion 58C have a truncated profile 54C2 and 58C2, respectively, to improve surface shedding of debris during use and to provide additional structural support to the first extended portion 54C and the second extended portion 58C during sealing with a collection container (not shown) in the sealing position.
[00160] When the mechanical separator 40C of the present embodiment is in use, the extended tab band 50C provides a robust sealing surface against a portion of the collection container wall (not shown), similar to the seal defined by the first extended tab and the second extended tab described above with reference to FIGS. 1-8. In certain embodiments, the extended tab band 50C may provide additional sealing and minimize leakage between the mechanical separator 40C and the collection container. In addition, in the configurations in which the float 42C is formed of TPE, the extended tab band 50C provides a mechanism for enhanced sealing in that TPE does not appreciably deform under conventional applied rotational forces but rather displaces to another location. The location of the arcuate extended tab band 50C about an outer surface 52C of the float 42C allows for the TPE to displace uniformly against a sidewall of the collection container in a sealing position, as described herein. As the extended tab band 50C may be provided in an alternating concave upwardly-directed and concave downwardly-directed orientation, the sealing surface of the mechanical separator 40C may be located at various heights about the outer surface 52C of the float 42C corresponding to the location of the extended tab band 50C.
[00161] In an additional configuration, it is intended herein that the mechanical separator 40C having an extended tab band 50C may be suitable for use in collection containers having a tilted orientation due to the enhanced sealing between the extended tab band 50C and the collection container (as described above) in the sealing position. It is also intended herein that the mechanical separator 40C may include an initial engagement band 116, as similarly described with reference to FIG. 35 above.
[00162] In accordance with yet another embodiment of the present invention, as shown in FIGS. 35F-35G, the mechanical separator 40A includes a separator body 41A
having a float 42A and a ballast 44A. The separator body 41A includes a through-hole 46A
defined therein.
In this configuration, the ballast 44A may include a base portion 52A and a joining structure 48A, such as a plurality of arms 50A for engaging a portion of the float 42A.
The ballast 44A, specifically the joining structure 48A, may be provided in permanent engagcment with a portion of the float 42A, such as by co-molding, two-shot molding, welding, or other adhesive joining means. In one configuration, the float 42A may be formed of a lower density material, such as TPE, and the ballast 44A may be formed of a higher density material, such as PET. In a further configuration, the mechanical separator 40A may be dimensioned such that the overall density of the separator body 41A is between the density of higher and lower density constituents of a blood sample, such as serum and red blood cells.
In yet a further embodiment, the overall density of the separator body 41A is 1.45 g/cm3.
[00163] As shown in FIG. 3511, the ballast 44A may include a base portion 52A
having a contact surface 54A and a joining surface 56A. In one configuration, the contact surface 54A
may include an at least partially curved surface 58A corresponding to an inner curvature of a collection container (not shown). The joining surface 56A may include an attachment between the base portion 52A and the joining structure 48A. In one configuration, the joining surface 56A and the joining structure 48A are co-formed. In another configuration, the joining surface 56A and the joining structure 48A are separately formed and subsequently provided in permanent attachment through mechanical or adhesive locking means.
[00164] The joining structure 48A may include a first end 60A for engaging the base portion 52A of the ballast 44A and a second end 62A for engaging a portion of the float 42A.
The top view of the float 42A may have a substantially circular outer perimeter Po, as shown in FIG. 351, and the float 42A may have a substantially curved cross-sectional side view, such as a substantially concave down cross-section as shown in FIG. 35H. In a further embodiment, the float 42A may have a substantially concave down cross-section adjacent an apex 64A of the float 42A, and a slight concave upward curvature adjacent the perimetcr Po of the float 42A, such as at a location at which the second end 62A of the joining structure 48A is attached to the float 42A. In one configuration, the second end 62A of the joining structure 48A is molded first and the float 42A is subsequently molded onto the second end 62A of the joining structure 48A to form a bond therewith. In another embodiment, the second end 62A of the joining structure 48A is inserted within, or provided adjaccnt to, a portion of the float 42A and subsequently bonded or otherwise adhered thereto.
[00165] In one configuration, the joining structure 48A may provide flexure between the float 42A and the base portion 52A. The flexure may be provided by at least one of the attachment between the first end 60A of the joining structure 48A and the base portion 52A, the attachment between the second end 62A of thefioining structure 48A and the float 42A, and the pivot points 68A of the joining structure 48A.
[00166] Referring to FIG. 35J, the mechanical separator 40A may be provided within a collection container 100A, such as adjacent an upper end 102A of the collection container 100A in an initial position. The mechanical separator 40A may be provided in engagement with a portion of a stopper 104A, such that a portion of the stopper 104A
extends through the through-hole 46A of the mcchanical separator 40A, as described elsewhere herein. In accordance with another embodiment of the present invention, the mechanical separator 40A
may be provided such that a portion of the float 42A and a portion of the base portion 52A of the ballast 44A engage an inner surface of the collection container 100A to restrain the mechanical separator 40A within the upper end 102A of the collection container 100A such that the through-hole 46A of the mechanical separator 40A is aligned with the longitudinal axis LA of the collection container 100A.
[00167] Referring again to FIG. 35J, a fluid specimen 108A, such as blood, is introduced into the collection container 100A, such as through the stopper 104A and aligned with through-hole 46A of the mechanical separator 40A when the mechanical separator 40A is oriented in the initial position as shown by reference character A. As rotational force is applied, the float 42A flexes and initiates a flexure between the float 42A
and the ballast 44A, as described above. The resulting flexure deforms the through-hole 46A and the methanical separator 40A disengages from thc stopper 104A and begins to rotate in the direction shown by aiTow R, as shown by reference character B.
[00168] As the mechanical separator 40A becomes submerged within the fluid specimen 108A, the float 42A begins to orient in an upward direction and the ballast simultaneously begins to orient in a downwards direction, as shown by reference character C.
During the continued application of rotational force, the ballast 44A pulls in a downwards direction and the float 42A flexes away from the sidewall 110A of the collection container, as shown by reference character D. Subsequently, as shown by reference character E, the float 42A is deformed to allow for the passage of higher and lower density phase constituents between the float 42A and the sidewall 110A of the collection container 100A.
This allows for separation of the higher and lower density phase constituents within the fluid sample 108A, as well as for the separation of higher and lower density phase constituents within the fluid sample 108A present within the through-hole 46A of the mechanical separator 40A.
[00169] Referring to FIG. 35K, once the application of rotational force has ceased, the mechanical separator 40A becomes oriented between the separated higher density phase 112A and the separated lower density phase 114A in a sealing position. At the same time, the flexure between the float 42A and the ballast 44A ceases, causing the float 42A to return to its initial position, as shown in FIG. 351, thereby forming a seal between the outer perimeter Po and the interior circumference of the sidewall 110A of the collection container 100A. The float 42A has an outer perimeter Po having an outer circumference that is at least slightly larger than the interior circumference of the sidewall 110A of the collection container 100A, thereby forming a robust seal therebetween.
[00170] Referring yet again to FIG. 35K, once the mechanical separator 40A has been transitioned to the sealing position, a sealing perimeter is established along the outer perimeter Po between at least a portion of the interior circumference of the sidewall 110A
and the mechanical separator 40A. As shown in FIG. 35K, the sealing perimeter along the outcr perimeter ro has a varying position about the interior circumference of the sidewall 110A as measured from the closed bottom end 113A of the collection container 100A. in one configuration, the sealing perimeter along the outer perimeter Po includes various sealing heights at each localized sealing location, SI, S2, 53, ctc. corresponding to the overall height of the seal between the mechanical separator 40A, specifically, the float 42A, and the sidewall 110A. The sealing perimeter accordingly has a height which varies slightly at each localized sealing location SI, S2, S3, etc. The sealing perimeter also defines an average sealing height HAvg which corresponds to the average height of each localized sealing location S1, S2, S3, etc., i.e., HAvg = Avg [S1, S2, S3, etc.]. The mechanical separator 40A also has a in.aximum height Llmax and a minimum height Hmin within the collection=
container.
The maximum height Hmaõ corresponds to the distance between the highest seal point along the outer perimeter Po and the closed bottom end 113A of the collection container 100A.

The minimum height Hmin corresponds to the lowest seal point along the outer perimeter Po and the closed bottom end 113A of the collection container 100A. In accordance with an aspect of the present invention, the average sealing height ilAvg is less than the difference between the maximum seal height Hmai and the minimum seal height limn, i.e., HAvg < Jima.
-[00171] In accordance with another embodiment of the present invention, as shown in FIGS. 35L-35M, the mechanical separator 40B includes a separator body 41B
having a float 42B and a ballast 44B. The separator body 41B includes a tlu-ough-hole 46B
defined therein.
In this configuration, the float 42B may include a joining structure 48B, such as a plurality of arms 50B for engaging a portion of the ballast 44B. As similarly described above, the joining structure 48B may be provided in permanent engagement with a portion of the ballast 44B, such as by co-molding, two-shot molding, welding, or other adhesive joining means. In this configuration, the joining structure 48B may exhibit increased flexibility allowing for easier transition from an initial position to a sealing position, as described herein.
[00172] Referring again to FIGS. 35L-35M, in one configuration, the float 42B
may include a cut-out 60B within the float 42B. In one embodiment, the cut-out 60B
may be positioned at the apex 62B of the float 42B and does not extend into the outer perimeter Po.
The cut-out 60B may provide for increased flexibility to allow passage of higher and lower density phase constituents thereby during usc, such as shown in FIG. 35J with reference to reference character E. In yet a further configuration, the joining structure 48B may include an opening 64B therein adapted to allow a portion of the ballast 44B to pass therethrough and be secured therein, such as by way of a mechanical interlock. In one embodiment, the joining structure 48B includes a continuous arm 50B connected to the float 42B at a first end 68B
and a second end 70B. The joining structure 48B may include an opening 64B
having a locking portion 72B of the ballast 44B extending therethrough. In one embodiment, the opening 64B may be disposed within the continuous arm 50B at a location opposed from the apex 62B of the float 42B. In another embodiment, the ballast 44B, such as the locking portion 72B, and the float 42B may be provided in permanent engagement so as to minimize separation of the float 42B and the ballast 44B.
[00173] Referring to FIGS. 35N-350, in a further embodiment of the present invention, the mechanical separator 40B includes a separator body 41B having a float 42B
and a ballast 44B. The separator body 41B includes a through-hole 46B defined therein. In this configuration, the float 42B may include a joining structure 48B, such as a plurality of arms 50B for engaging a portion of the ballast 44B. As similarly described above, the joining structure 48B may include a continuous arm 50B connected to the float 42B at a first end 68B
and a second end 70B. The joining structure 48B may include an opening 649 having a locking portion 72B of the ballast 44B extending therethrough in pcmianent engagement so as to minimize separation of the float 42B and the ballast 449. The ballast 44B may also include a support structure 74B adjacent and connected to the joining structure 48B of the float 42B. In one embodiment, the support structure 748 of the ballast 44B may be co-formed or otherwise permanently engaged with the joining structure 489 of the float 42B. In a further embodiment, the joining structure 48B may define a recess adapted to at least partially surround the support structure 74B. In yct a further embodiment, =the support structure 74B and the joining structure 48B allow the float 42B and ballast 44B to at least partially flex with respect to each other, as described herein. In certain configurations, a ballast cut-out 80B may be provided within the base portion 52B to lessen shrinkage of the = ballast 44B during formation.
[00174] Although the through-hole of the mechanical separator of the present invention has been shown herein as a straight bore having a spherical or elliptical cross-section., it is also contemplated herein that the through-hole 546, as shown in FIGS. 36-37, may define a serpentine or circuitous path for receiving liquid therethrough. In this configuration, the mechanical separator 540 includes a through-hole 546 having a first opening 549 and a second opening 551 that are offset with respect to each other. Specifically, the first opening 549 and the second opening 551 may bc offset, such as at 600 or 90 angles with respect to each other. As shown in FIG. 36, in the initial position, the first opening 549 is aligned with the top open end 590 of the collection container 582, represented herein in section. Fluid is directed through the through-hole 546 in the direction as shown by directional an-ow R. In this configuration, at least onc surface of the sccond opening 551 contacts the sidewall of the collection container 582, while another surface of the second opening 551 remains free within the interior of the collection container 582. Accordingly, a gap is provided between the sidewall of the collection container 582 and the second opening 551 of the through-hole 546 to allow fluid to exit the through-hole 546 and pass into the interior of the collection container 582.
[001751 Upon application of rotational force, the mechanical separator 540 will transition from the initial position, as shown in FIG. 36, to a sealing position, as shown in FIG. 37, along directional arrow S, due to the moment of the float and ballast components as described herein. In this configuration, both the first opening 549 and the second opening 551 of the through-hole 546 are provided out of alignment with thc top open end 590 of the collection container 582 and are adapted such that fluid is not directed into the through-hole 546. A
second scaling perimeter 595 is also established about the mechanical separator 540 such that fluid cannot pass between thc mechanical separator 540 and the collection container 582 or through the through-hole 546 of the mechanical separator 540, effectively establishing a harrier.
100176] In yet another configuration, as shown in FIGS. 38-39, the elongation of the mechanical separator 640 during application of rotational force is exemplified. In this configuration, the mechanical separator 640 may include a float 642 and a ballast 644 with a third section 643 joining the float 642 and the ballast 644. It is contemplated herein, that in this configuration, both the float 642 and the ballast 644 may be made of a substantially rigid material with the float 642 having a density that is less than the density of the ballast 644. In order to provide for an elongation between these components, the third section 643 formed of a flexible material, such as TPE, may be provided therebetwcen. During centrifugation, the third section 643 elongates, as shown in FIG. 39, in a manner similarly described with respect to the elongation of the float above. During elongation of the third section 643, higher and lower density phases of a fluid may pass adjacent the fluid passage surfaces 645, as shown in FIG. 39 as in a direction extending into the page.
[00177] With reference again to FIG. 2 and FIGS. 40 and 41, the separator body 41 may include a center of mass R that is offset from the through-axis T, shown in FIG. 2, of the separator body 41. In this configuration, the mechanical separator 40 is transitionable from a first position (such as shown in FIGS. 40-41) in which the mechanical separator 40 is engaged with a portion of the closure 84 (shown in FIG. 41) or a portion of the sidewall 86 of the collection container 82 (shown in FIG. 40) and the center of mass R is oriented on a first side S1 of thc longitudinal axis L of the collection container 82, to a second position, such as shown in FIG. 29, in which the mechanical separator 40 is disengaged from the closure or initial engagement position with the collection container, and the center of mass R is oriented across the longitudinal axis L of the collection container 82. At some point, during the transition of the center of mass R across the longitudinal axis L of the collection container 82, the float 42 of the mechanical separator 40 must deform in a direction substantially perpendicular to the through-axis T of the separator body 41 in order to allow for transition of the mechanical separator 40 from the initial first position to the second scaling position.
During elongation of the float 42, the higher and lower density phases of the specimen may pass between the mechanical separator 40, specifically the elongated float 42, and the sidewall 86 of the collection container 82 in which the mechanical separator is in an intermediate position. From the intermediate position, the mechanical separator may subsequently transition to the scaling position, in which a portion of the float 42 forms a sealing engagement with a portion of the interior of the collection container, upon termination of applied rotational force.
[00178] Accordingly, the mechanical separator of the present invention may be considered to transition between three phases of operation: the initial phase in which a specimen is provided through the through-hole of thc separator body; the intermediate phase in which the separator has disengaged from the initial position and the float 42 is elongated to allow passage of higher and lower density phases thereby; and the sealing position in which the float 42 forms a barrier with a portion of the collection container. During this sequence of phases, the mechanical separator may be considered as "open-open-closed"
wherein an "open" phase is defined as a state in which the mechanical separator does not form a sealing barrier with the collection container preventing the passage of fluid therethrough and therearound, In contrast, a "closed" phase is defined as a state in which mechanical separator 40 does form a sealing barrier with the collection container preventing the passage of fluid therethrough and thercaround.
[00179] The mechanical separator of the present invention is also intended for use with various closure arrangements in the initial phase. Referring to FIG. 40, the mechanical separator 40 may be maintained in the initial position by the interference between the float 42 and the initial engagement band 116 and the sidewall 86 of the collection container 82. In this configuration, the mechanical separator 40 is not restrained by any portion of the closure 84.
[00180] In another configuration, as shown in FIGS. 41-44, the separation assembly includes a closure 84 and a post 180 engaged within a recess 181 of the closure 84. The post 180 may include a separator receiving end 182 and a closure engagement end 183. The closure engagement end 183 may be adapted for positioning within the recess 181 of the closure 84 and may optionally include at least one barb 184 for securing the post 180 within the closure 84. The separator receiving end 182 may have any suitable profile such that it may be at least partially disposed within the through-hole 46 of the separator body 41. In one embodiment, the separator receiving end 182 has a substantially circular cross-section. In another embodiment, the separator receiving end 182 has a substantially elliptical cross-section. The separator receiving end 182 is dimensioned to snugly fit within the through-hole 46 to provide a releascable engagement with the mechanical separator 40. The post 180 is also adapted for positioning within the interior of the collection container 82 and includes a post through-hole 186 aligned along the longitudinal axis of the collection container 82.
When the mechanical separator 40 is engaged with the post 180, a fluid path is formed between the tIvough-hole 46 of the mechanical separator 40 and the post through-hole 186 of the post 180. This effectively forms a "sealed" fluid path for the direction of the fluid sample into the collection container 82. Upon application of rotational force, the mechanical separator experiences a slight longitudinal movement prior to the axial rotation as the mechanical separator is pulled downward off thc post 180 during applied rotation.
[00181] Referring to FIGS. 45-46, an alternative separation assembly is shown including a collection container 782 having a first region 783 having an open top end 784 and a first sidewall 785 defining a first interior 786 and a first exterior 787. The collection container 782 also includes a second region 788 having a closed bottom end 789 and a second sidewall 790 defining a second interior 791 and a second exterior 792. In this configuration, the first region 783 and thc second region 788 are aligned along a longitudinal axis LA
such that the first interior 786 and the second interior 791 are provided in fluid communication. The first interior 786 includes a first diameter F and the second interior 791 includes a second diameter Ds, with the first diameter DF being greater than the second diameter Ds. The collection container 782 also includes at least 011C fluid flute 793 extending between the first region 783 and the second region 788 to allow passage of fluid theretbrough from the first region 783 to the second region 788. In this configuration, the first exterior 787 of the first region 783 may have a profile that corresponds to a 16 inm collection tube, and the second exterior 792 of the second region 788 may have a profile that corresponds to a 13 mm collection tubc.
[00182] The first interior 786 of the first region 783 may be dimensioned to accommodate a mechanical separator 40 therein in any of the configurations described herein. The second interior 791. is dimensioned to at least partially restrain a portion of the mechanical separator 40 from passing therein in the initial position and absent applied rotational force. During application of rotational force, the float portion 42 of the mechanical separator 40 may elongate thereby decreasing the effective diameter of the mechanical separator 40 and allowing passage of the mechanical separator into the second interior 791. In this configuration, the orientation of the through-hole 46 of the mechanical separator 40 is irrelevant as the introduction of fluid sample into the collection container 782 occurs around the separator body 41 as opposed to through the through-hole 46. Specifically, fluid is introduced into the collection container 782 into the first interior 786 and around the mechanical separator 40. The sample then passes into the second interior 791 by way of the fluid flutes 793. Accordingly, the initial orientation of the mechanical separator 40 is irrelevant to the Innction of the separator in this embodiment.
[00183] In accordance with a further embodiment of the present invention, as shown in FIG. 46A, a mechanical separator, as described herein, may be used with a collection container 782A having a slight taper along a portion of the sidewall 783A
extending between an open top end 784A and a closed bottom end 785A. In this configuration, the collection container 782A includes a first region indicator section A of FIG. 46A. First region indicator section A is disposed along a portion of the sidewall 783A at a distance 786A
from the open top end 784A. The collection container 782A may also include a second region indicator section B of FIG. 46A. Second region indicator section B is disposed along a portion of the sidewall 783 at a distance 788A from the open top end 784A. In one configuration, the region defined between the first region indicator section A and the second region indicator B
may have substantially no taper. In another configuration, the region defined between the first region indicator section A and the second region indicator B may have substantially may have a slight inward taper. In a further embodiment, the region defined between the first region indicator section A and the second region indicator B may be about the expected separation transition between the separated higher and lower density phases of a liquid to be separated.
[00184] In yet another embodiment, shown in FIGS. 47-48, the separation assembly includes a closure 850 adapted for sealing engagement with the collection container 852. The closure 850 includes a receiving end 842 for positioning within the open end 853 of the collection container 852. The receiving end 842 defines an interior cavity 854 and includes an undercut protrusion 855 extending into the interior cavity 854. The undercut protrusion 855 of the closure 850 is at least partially disposed within the through-hole 46 of the mechanical separator 40 in the initial position. Also in the initial position, at least a portion of the separator body 41 is disposed within the interior cavity 854. The positioning of the mechanical separator 40 within the interior cavity 854 ensures that the mechanical separator 40 remains captured in the closure 850 during assembly of the closure 850 with the collection container 852. This configuration may be utilized with the collection container having a first region and a second region, as described above. During application of rotational force, the float 42 of the mechanical separator 40 elongates allowing the mechanical separator 40 to disengage from the closure 850.
[00185] Referring now to FIGS. 49-59, various other engagements between the mechanical separator 40 and the closure 84 are also contemplated herein. As shown in FIG.

49, the mechanical separator 40 may include an angled engagement boss 900 disposed within the through-hole 46 in the initial position. As shown in FIG. 50, the mechanical separator 40 may include a substantially cylindrical engagement boss 901 disposed within the through-hole 46 in the initial position. A flanking portion 902 of the closure 903 may be provided adjacent an exterior surface 904 of the mechanical separator 40 adjacent the first opening 905 for further securing the mechanical separator 40 with the closure 903 and establishing a "sealed" fluid path into the collection container 906 therethrough.
[00186] Referring to FIGS. 51-52, a sealant 907 may be provided adjacent the flanking portion 902, as described above, for further seeming the mechanical separator 40 and the closure 903. The sealant 907 may be sufficiently tacky to retain the mechanical separator 40 in place in the initial position, yet weak enough to permit release of the mechanical separator 40 from the closure 903 upon application of rotational force.
[00187] Referring to FIG. 53, yet another alternative angled engagement boss 908 may be disposed within the through-bole 46 in the initial position. Referring to FIGS. 54-55, the closure 910 may include at least one, such as two, depending arms 911 for engagement with the mechanical separator 40. In one configuration, each depending arm 911 includes a contact protrusion 912 for engaging a portion of the mechanical separator 40 within the through-hole 46 in the initial position. The interference between the contact protrusion 912 and the mechanical separator 40 may be sufficient to restrain the mechanical separator 40 with the closure 910 in the initial position, yet allow for disengagement of the mechanical separator 40 from the closure 910 upon application of rotational force.
[00188] Referring to FIGS. 56-57, the closure 915 may include a molding insert having a wedging basket 917 for further securing the molding insert 916 with the closure 915.
As described above, the molding insert 916 may include a separator receiving end 918 for engaging the mechanical separator 40 through the through-hole 46, and a closure engagement end 919, as described above. Referring to FIG. 58, another molding insert 920 may include at least one barb 921 for further securing the molding insert 920 with the closure 922.
Referring to FIG. 59, yet another molding insert 930 may include at least one protrusion 931 for securing the molding insert 930 with the closure 932.
[00189] Referring to FIGS. 60-68, the separation assemblies described herein may also include a carrier 650 releasably engaged with a portion of the mechanical scparator 40 in the initial position. In each of these configurations, the carrier 650 disengages from the mechanical separator 40 upon application of rotational force and enters the fluid phase disposed below the mechanical separator 40 for the purpose of preventing clots or fibrin strands from interfering with the operation of the mechanical separator 40.
[00190] As shown in FIG. 60, the carrier 650 may include a closure engagement portion 651 for releasable engagement with a portion of the closure 652, and a depending portion 653 for releasable engagement with a portion of the mechanical separator 40, such as through the through-hole 46. As shown in FIG. 61, the carrier 650 may include a closure engagement portion 651 having a plurality of flanges 654. The carrier 650 may also include a bowed separator engagement portion 655 for engaging a portion of the mechanical separator 40, such as within the through-hole 46. Upon application of rotational force, the mechanical separator 40 disengages from the initial position and rotates as described herein. Upon rotation of the mechanical separator 40, the bowed separator engagement portion 655 contracts and allows the mechanical separator 40 to separate from the carrier 650.
[00191] Referring to FIGS. 63-66, the canier 650 may also be releasably connected to the mechanical separator 40 in a direction opposed from the closure 660. Referring to FIGS. 67-68, the carrier 650 may optionally consist of a dissolvable material which diffuses into the sample when contact is made, as shown in FIG. 68.
[00192] One of thc significant benefits of thc mechanical separator of the present invention is that it does not require penetration by a needle cannula in order to permit entry of a fluid sample into a collection container. In each of the above-described embodiments, when the assembly is subjected to an applied rotational force, such as centrifugation, the respective phases of the specimen, such as blood, will begin to separate into a denser phase displaced toward the bottom of the collection container, and a less dense phase displaced toward the top of the collection container. The applied rotational force will urge the ballast of the mechanical separator toward the closed bottom end and the float toward the top end of the collection container. This movement of the ballast will generate a longitudinal deformation of the float. As a result, the float will become longer and narrower and will be spaced concentrically inward from the inner surface of the cylindrical sidewall of the collection container. Accordingly, lighter phase components of the blood will be able to slide past the float and travel upwards, and likewise, heavier phase components of the blood will be able to slide past the float and travel downwards.
[00193] As noted above, the mechanical separator of the present invention typically has an overall density between the densities of the separated phases of the blood.
Consequently, the mechanical separator will stabilize in a position within the collection container such that the heavier phase components will be located between the mechanical separator and the closed bottom end of the collection container, while the lighter phase components will be located between the mechanical separator and the top end of the collection container.
[00194] After this stabilized state has been reached, the centrifuge will be stopped and the float will resiliently return to its unbiased state and into sealing engagement with the interior of thc cylindrical sidewall of the collection container. The formed liquid phases may then be accessed separately for analysis. In one embodiment, the assembled mechanical separator of the present invention may be scaled to fit within a 13 mm collection tube.
[00195] In use, the mechanical separator of the present invention minimizes device pre-launch and eliminates the need for cannula puncture which substantially eliminates sample pooling under the closure. Additionally, the reduced clearance of the mechanical separator minimizes the loss of trapped fluid phases, such as serum and plasma.

Claims (7)

1. A device for separating a fluid sample within a collection container, comprising:
a separator having a through-hole defined therethrough for allowing fluid to pass therethrough, the separator comprising:
a float, having a first density; and a ballast, having a second density greater than the first density, wherein a portion of the float is connected to a portion of the ballast, wherein the separator has a center of volume that is located within the through-hole, wherein the float defines an upper exterior surface of the separator, the ballast defines a lower exterior surface of the separator, and a through-axis is disposed within a plane angled with respect to a plane extending vertically from an apex of the upper exterior surface of the float to an apex of the lower exterior surface of the ballast and bisecting a center of the separator.
2. The device of claim 1, wherein the center of volume is located on the through-axis of the through-hole.
3. The device of claim 2, wherein the center of volume is offset from a center of mass of the separator.
4. The device of claim 3, wherein the center of mass is offset from the through-axis of the through-hole.
5. The device of claim 3, wherein at least a portion of the separator has a spheroid shape.
6. The device of claim 3, wherein the through-hole is defined in part by the float and in part by the ballast.
7. The device of claim 3, wherein the float is adapted for deformation in a direction substantially perpendicular to the through-axis of the through-hole upon applied rotational force to the separator.
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Families Citing this family (38)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3537022A (en) * 1968-01-10 1970-10-27 Hewlett Packard Co Signal translating circuit
JP5385383B2 (en) 2008-07-21 2014-01-08 ベクトン・ディキンソン・アンド・カンパニー Density phase separator
ES2747961T3 (en) 2009-05-15 2020-03-12 Becton Dickinson Co Density phase separation device
US8377395B2 (en) * 2010-04-29 2013-02-19 Charles M. Coleman Integrated blood specimen processor
RU2583831C2 (en) * 2011-06-10 2016-05-10 Бектон, Дикинсон Энд Компани Ventilated safety locking device
CA2826571A1 (en) * 2011-11-08 2013-05-16 Rarecyte, Inc. Methods and systems for separating components of a suspension using a secondary liquid
WO2013158340A1 (en) * 2012-04-18 2013-10-24 Rarecyte, Inc. Systems and methods for separation and analysis of target analytes
US11318459B2 (en) * 2012-09-07 2022-05-03 Becton, Dickinson And Company Method and apparatus for microorganism detection
US9625360B2 (en) * 2012-11-30 2017-04-18 Rarecyte, Inc. Apparatus, system, and method for collecting a target material
US9956555B2 (en) 2012-11-30 2018-05-01 Rarecyte, Inc. Apparatus, system, and method for collecting a target material
EP2996736B1 (en) * 2013-05-15 2019-10-30 Becton, Dickinson and Company Manual flow regulation for blood collection
US20160262678A1 (en) * 2013-11-14 2016-09-15 Greiner Bio-One Gmbh Receptacle device, method for providing the same and method for separating a mixture
JP5963376B2 (en) * 2014-05-30 2016-08-03 リケンテクノス株式会社 Active energy ray-curable resin composition and hard coat laminated film using the same
US20160136639A1 (en) * 2014-11-13 2016-05-19 Becton, Dickinson And Company Mechanical Separator for a Biological Fluid
US9694359B2 (en) 2014-11-13 2017-07-04 Becton, Dickinson And Company Mechanical separator for a biological fluid
US10272445B2 (en) 2015-11-24 2019-04-30 Royal Biologics Methods and apparatus for separating fluid components
WO2017143149A1 (en) * 2016-02-17 2017-08-24 Polymer Technology Systems, Inc. Systems and methods for a blood collector with enhanced volume using capillary techniques
CN109414694A (en) * 2016-06-03 2019-03-01 瑞尔赛特股份有限公司 For collecting the equipment, system and method for target substance
CN106442005B (en) * 2016-09-07 2023-04-25 昆明理工大学 Layered liquid extraction equipment
KR101894966B1 (en) * 2017-03-30 2018-09-04 신현순 A container for centrifugal separator
DE102017108940A1 (en) 2017-04-26 2018-10-31 Sarstedt Aktiengesellschaft & Co.Kg separating body
DE102017108933B4 (en) 2017-04-26 2018-12-06 Sarstedt Aktiengesellschaft & Co.Kg separating body
DE102017108935B4 (en) 2017-04-26 2018-12-06 Sarstedt Aktiengesellschaft & Co.Kg Separator and tubular container with the separator
DE102017108937B4 (en) 2017-04-26 2018-12-06 Sarstedt Aktiengesellschaft & Co.Kg separating body
DE102017108941A1 (en) 2017-04-26 2018-10-31 Sarstedt Aktiengesellschaft & Co.Kg separating body
CN108164405A (en) * 2018-02-01 2018-06-15 南通鸿富达利化工有限公司 A kind of pinacoline crude product mixing liquid separating apparatus
JP2021531059A (en) 2018-07-09 2021-11-18 ハヌマン ペリカン,インコーポレイテッド Equipment and methods for processing blood
WO2020013997A1 (en) 2018-07-09 2020-01-16 Hanuman Pelican, Inc. Apparatus and methods for separating blood components
KR102170080B1 (en) * 2018-11-23 2020-10-27 재단법인대구경북과학기술원 Precise and Miniature Parallel Robot Manipulator
CN113874705A (en) * 2019-01-07 2021-12-31 1866402安大略有限公司 Blood separation and analysis device and method
CA3127191A1 (en) 2019-01-21 2020-07-30 Eclipse Medcorp, Llc Methods, systems and apparatus for separating components of a biological sample
EP3890799A4 (en) 2019-02-06 2022-10-26 Hanuman Pelican, Inc. Apparatus and methods for concentrating platelet-rich plasma
DE102019121723A1 (en) * 2019-08-13 2021-02-18 Sarstedt Ag & Co. Kg Separation bodies and methods for separating blood plasma and blood cells
WO2021112119A1 (en) 2019-12-05 2021-06-10 積水メディカル株式会社 Blood collection container and plasma separation method
CA3170079A1 (en) 2020-03-11 2021-09-16 Kuniya KOMAI Leukocyte concentration separation device, blood collection container, and method for separating leukocytes
CN111974475B (en) * 2020-08-20 2021-09-21 四川行之智汇知识产权运营有限公司 Blood component separator
CN111991852A (en) * 2020-09-10 2020-11-27 天津市顺泽采油设备有限公司 Quick separation pump for petroleum sampling and detection
WO2022250142A1 (en) 2021-05-28 2022-12-01 積水メディカル株式会社 Blood collection container, method for separating plasma, method for separating extracellular free nucleic acid, and method for separating extracellular vesicle

Family Cites Families (356)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2577780A (en) * 1950-05-09 1951-12-11 Compule Corp Crowned cupped resilient plug for cylindrical passages
US2693049A (en) * 1949-08-12 1954-11-02 Robert A Atton Fishing line float
US3012742A (en) 1958-06-27 1961-12-12 Flex O Lators Wire fabric
US2910798A (en) * 1958-10-31 1959-11-03 Thomas W Bias Fishing bobber with bait guard
US3012077A (en) 1960-03-11 1961-12-05 Union Carbide Corp Process for the production of organo sulfur compounds
US3300051A (en) * 1963-09-26 1967-01-24 Internat Equipment Co Filter tube for use in a centrifuge
US3326215A (en) * 1963-12-16 1967-06-20 Sarnoff Two compartment syringe with vapor seal between compartments
US3508653A (en) * 1967-11-17 1970-04-28 Charles M Coleman Method and apparatus for fluid handling and separation
US3809733A (en) * 1968-11-06 1974-05-07 Ici Ltd Production of double layer laminates
US3654925A (en) * 1969-09-23 1972-04-11 Becton Dickinson Co Plasma separator system
US3543338A (en) * 1969-11-06 1970-12-01 Cities Service Co Molding apparatus
BE789954A (en) * 1970-03-07 1973-02-01 Sarstedt Kunststoff BLOOD COLLECTION DEVICE
US3647070A (en) * 1970-06-11 1972-03-07 Technicon Corp Method and apparatus for the provision of fluid interface barriers
US3741400A (en) * 1970-06-15 1973-06-26 J Dick Blood sample container
US3661265A (en) * 1970-07-27 1972-05-09 Contemporary Research And Dev Serum separator type container
US3771965A (en) * 1971-04-23 1973-11-13 R Grams Biological fluid sampling apparatus
DE2129752A1 (en) * 1971-06-16 1972-12-28 Karl Hehl Injection mold for a plastics processing injection molding machine for the production of two-tone injection-molded parts
US3800947A (en) * 1971-07-16 1974-04-02 P Smith Reagent tube and centrifugally operated solid-liquid separating device
US3814248A (en) * 1971-09-07 1974-06-04 Corning Glass Works Method and apparatus for fluid collection and/or partitioning
US3773450A (en) * 1971-12-06 1973-11-20 S Svanfors Arrangement at injection moulding machine for rendering possible multi-component moulding
US3849072A (en) * 1972-04-25 1974-11-19 Becton Dickinson Co Plasma separator
US3779383A (en) * 1972-04-25 1973-12-18 Becton Dickinson Co Sealed assembly for separation of blood components and method
US3747257A (en) * 1972-05-24 1973-07-24 P Olsen Adjustable weight bobber
US3780935A (en) * 1972-07-10 1973-12-25 Lukacs & Jacoby Ass Serum separating method
US3852194A (en) * 1972-12-11 1974-12-03 Corning Glass Works Apparatus and method for fluid collection and partitioning
US3786985A (en) * 1973-01-05 1974-01-22 Hoffmann La Roche Blood collection container
US4057499A (en) * 1973-03-09 1977-11-08 Buono Frank S Apparatus and method for separation of blood
US3850174A (en) * 1973-03-14 1974-11-26 Becton Dickinson Co Plasma separator assembly
US3814258A (en) * 1973-03-15 1974-06-04 Dickinson And Co Blood plasma separator with filter
US4409988A (en) * 1973-05-08 1983-10-18 Donald J. Greenspan Apparatus for collecting cultures
US3890954A (en) * 1973-05-08 1975-06-24 U S Medical Research & Dev Inc Method of and apparatus for collecting cultures
US3879295A (en) * 1973-08-17 1975-04-22 Eastman Kodak Co Vacutainer with positive separation barrier
US4001122A (en) * 1973-08-22 1977-01-04 Telan Corporation Method and device for separating blood components
SE384274B (en) * 1973-11-27 1976-04-26 Stille Werner Ab SERUM SEPARATOR
US3882021A (en) * 1974-02-27 1975-05-06 Becton Dickinson Co Sealed assembly for separation of blood with anti-red cell barrier
US3887466A (en) * 1974-02-27 1975-06-03 Becton Dickinson Co Serum/plasma separator cannula fluid by-pass type centrifugal valve cannula seal
US3945928A (en) * 1974-02-27 1976-03-23 Becton, Dickinson And Company Serum/plasma separators with centrifugal valves
US3957654A (en) * 1974-02-27 1976-05-18 Becton, Dickinson And Company Plasma separator with barrier to eject sealant
US3890237A (en) * 1974-02-27 1975-06-17 Becton Dickinson Co Plasma separator {13 {0 cord stop type
US3897343A (en) * 1974-02-27 1975-07-29 Becton Dickinson Co Plasma separator-hydrostatic pressure type
US3894952A (en) * 1974-02-27 1975-07-15 Becton Dickinson Co Serum/plasma separator assembly having interface-seeking piston
US3887465A (en) * 1974-02-27 1975-06-03 Becton Dickinson Co Serum/plasma separator {13 {0 cannula fluid by-pass type
US3891553A (en) * 1974-02-27 1975-06-24 Becton Dickinson Co Serum and plasma separator {13 {0 constrictionless type
US3935113A (en) * 1974-02-27 1976-01-27 Becton, Dickinson And Company Serum/plasma separator with centrifugal valve
US3894950A (en) * 1974-02-27 1975-07-15 Becton Dickinson Co Serum separator improvement with stretchable filter diaphragm
US3894951A (en) * 1974-02-27 1975-07-15 Becton Dickinson Co Serum/plasma separator; interface seeking piston; resilient apertures in lower diaphragm type
US3941699A (en) * 1974-02-27 1976-03-02 Becton, Dickinson And Company Plasma separator with centrifugal valve
US3920557A (en) * 1974-02-27 1975-11-18 Becton Dickinson Co Serum/plasma separator--beads-plus-adhesive type
US3919085A (en) * 1974-02-27 1975-11-11 Becton Dickinson Co Plasma separator assembly
US3951801A (en) * 1974-02-27 1976-04-20 Becton, Dickinson And Company Serum/plasma separator-strut stop type
US3897337A (en) * 1974-02-27 1975-07-29 Becton Dickinson Co Plasma separator assembly having interface-seeking piston with centrifugal valve
US3897340A (en) * 1974-02-27 1975-07-29 Becton Dickinson Co Serum/plasma separator assembly with interface-seeking piston having coarse and fine band filters
US3909419A (en) * 1974-02-27 1975-09-30 Becton Dickinson Co Plasma separator with squeezed sealant
US3887464A (en) * 1974-02-27 1975-06-03 Becton Dickinson Co Serum/plasma separator with centrifugal valve seal
US3862042A (en) * 1974-02-27 1975-01-21 Becton Dickinson Co Serum/plasma separator - piston with red-cell trapping surfaces
US3920549A (en) * 1974-03-18 1975-11-18 Corning Glass Works Method and apparatus for multiphase fluid collection and separation
US3932277A (en) * 1974-03-29 1976-01-13 Bio-Logics Products, Inc. Method and apparatus for separating blood fractions
FR2274918A1 (en) * 1974-03-30 1976-01-09 Sarstedt Kunststoff FILTERING DEVICE FOR SEPARATION OF BLOOD FRACTIONS
JPS50157573A (en) 1974-06-11 1975-12-19
JPS5237913Y2 (en) * 1974-06-13 1977-08-29
US3929646A (en) * 1974-07-22 1975-12-30 Technicon Instr Serum separator and fibrin filter
US3947176A (en) * 1974-07-23 1976-03-30 Rainville Company, Inc. Double injection mold with neck gating
US3901219A (en) * 1974-07-25 1975-08-26 Becton Dickinson Co Blood collecting container and method
US3960727A (en) * 1974-08-09 1976-06-01 Hochstrasser Harry T Apparatus and method for isolating soluble blood components
US3931018A (en) * 1974-08-09 1976-01-06 Becton, Dickinson And Company Assembly for collection, separation and filtration of blood
GB1496973A (en) * 1974-10-01 1978-01-05 Nissan Motor Injection moulding method of producing laminated plastics article including a thermoset layer and metal mould for same
FR2303120A1 (en) * 1975-03-06 1976-10-01 Vidilles Jacques SOFT CONCENTRATOR FOR THE RECOVERY OF POLLUTANT LIQUIDS FLOATING ON THE SURFACE OF A BODY OF WATER
US3969250A (en) * 1975-03-10 1976-07-13 Farr Andrew F Apparatus for preparing liquid samples for analysis in automatic analyzers
US3972812A (en) * 1975-05-08 1976-08-03 Becton, Dickinson And Company Blood serum separation filter disc
US3981804A (en) * 1975-06-25 1976-09-21 Corning Glass Works Apparatus for separating multiphase fluids
US4083788A (en) * 1975-11-19 1978-04-11 Ferrara Louis T Blood serum-isolation device
US4021340A (en) * 1975-11-28 1977-05-03 Corning Glass Works Blood separating composition
US4088582A (en) * 1976-01-16 1978-05-09 Sherwood Medical Industries Inc. Blood phase separation means
US4055501A (en) * 1976-01-16 1977-10-25 Sherwood Medical Industries Inc. Fluid collection device with phase partitioning means
US4027660A (en) * 1976-04-02 1977-06-07 Wardlaw Stephen C Material layer volume determination
CA1074273A (en) * 1976-05-06 1980-03-25 Sherwood Medical Industries Inc. Phase separation device
NO137663C (en) * 1976-09-30 1978-03-29 Ken Heimreid PROCEDURES FOR EXAMINATION OF UNCOAGULATED BLOOD
US4142668A (en) * 1976-10-01 1979-03-06 Lee Jae Y Serum-plasma separator and transfer apparatus
IT1103118B (en) * 1977-01-10 1985-10-14 Levine Robert A DEVICE AND TECHNIQUE TO IMPROVE THE SEPARATION OF CELL LAYERS IN CENTRIFUGAL BLOOD SAMPLES
AT381466B (en) * 1977-03-16 1986-10-27 Ballies Uwe SEPARATING TUBES FOR CENTRIFUGAL SEPARATION
US4189385A (en) * 1977-05-03 1980-02-19 Greenspan Donald J Method and apparatus for separating serum or plasma from the formed elements of the blood
US4131549A (en) * 1977-05-16 1978-12-26 Ferrara Louis T Serum separation device
US4202769A (en) * 1977-06-16 1980-05-13 Greenspan Donald J Method for separating serum or plasma from the formed elements of blood
US4119125A (en) * 1977-06-22 1978-10-10 Elkins Carlos D Method and apparatus for handling liquid samples
US4169060A (en) * 1977-10-25 1979-09-25 Eastman Kodak Company Blood-collecting and serum-dispensing device
DE2749130A1 (en) 1977-11-03 1979-05-10 Voigt Hans Wolfgang Dr Med Blood plasma and serum clarification method - using agitation with fluorine cpds. at constant high temp.
US4275030A (en) * 1978-05-10 1981-06-23 Pedro Mares Injection molding articles of more than one resin component
US4201209A (en) * 1978-05-24 1980-05-06 Leveen Harry H Molded hypodermic plunger with integral shaft and elastomeric head
US4257886A (en) * 1979-01-18 1981-03-24 Becton, Dickinson And Company Apparatus for the separation of blood components
AU542204B2 (en) 1979-03-23 1985-02-14 Terumo Corp. Separating blood
JPS5917386B2 (en) * 1979-03-23 1984-04-20 テルモ株式会社 Blood separation method and device
US4246123A (en) * 1979-04-20 1981-01-20 Sherwood Medical Industries Inc. Fluid collection device with phase partitioning means
US4569764A (en) 1979-04-20 1986-02-11 Sherwood Medical Company Collection device with phase partitioning means
US4243362A (en) * 1979-06-04 1981-01-06 Globe-Union Inc. Composite molding apparatus for articles from two materials having a rotary mold block which includes pins for providing core areas
US4279863A (en) * 1979-09-12 1981-07-21 Sherwood Medical Industries, Inc. Reagent separator for a blood collection tube
NO146616C (en) * 1979-10-04 1982-11-03 Ken Heimreid PROCEDURE AND APPARATUS FOR PREPARATION FOR INVESTIGATION OF UNCOAGULATED BLOOD.
EP0032544B1 (en) * 1980-01-15 1984-07-25 F. HOFFMANN-LA ROCHE & CO. Aktiengesellschaft Fixed angle rotor for ultra centrifuge
JPS56118669A (en) 1980-02-25 1981-09-17 Sekisui Chem Co Ltd Blood serum separator
DE3165646D1 (en) * 1980-05-08 1984-09-27 Terumo Corp Apparatus for separating blood
US4369117A (en) * 1980-05-12 1983-01-18 American Hospital Supply Corporation Serum separating method and apparatus
US4315892A (en) * 1980-07-18 1982-02-16 Sherwood Medical Industries, Inc. Fluid collection device having phase partitioning means
DE3101733C2 (en) 1981-01-21 1982-10-14 Uwe Dr.Med. 2300 Kiel Ballies Separating element in a separating tube for centrifugal separation
US4381275A (en) * 1981-01-30 1983-04-26 Trade Finance International Stabilized core injection molding of plastic
US4707276A (en) 1981-04-15 1987-11-17 Sherwood Medical Company Fluid collection device with phase partitioning means
US4417981A (en) * 1981-05-04 1983-11-29 Becton, Dickinson And Company Blood phase separator device
JPS581712U (en) 1981-06-29 1983-01-07 いすゞ自動車株式会社 Engine blow-by gas ventilation system
FR2513534B1 (en) 1981-09-30 1987-09-18 Inst Francais Du Petrole DEVICE FOR SEPARATING NON-MISCIBLE FLUIDS OF DIFFERENT DENSITIES
US4535014A (en) 1981-10-01 1985-08-13 Frederick Bugay Method of molding a multi-colored article
US4448741A (en) 1981-12-07 1984-05-15 Husky Injection Molding Systems Ltd. Method of molding plastic workpieces about slender permanent inserts
US4444711A (en) 1981-12-21 1984-04-24 Husky Injection Molding Systems Ltd. Method of operating a two-shot injection-molding machine
US4425235A (en) * 1982-03-22 1984-01-10 Sherwood Medical Company Blood collection device with phase partitioning means
US4517090A (en) 1982-03-30 1985-05-14 Baxter Travenol Laboratories, Inc. Low volume, large area filters for IV or blood filtration
US4803031A (en) 1982-06-03 1989-02-07 Anchor Hocking Corporation Method and apparatus for molding a closure cap
US4464254A (en) 1982-06-03 1984-08-07 Porex Technologies, Corp. Device for separating serum from blood sample
US4443345A (en) 1982-06-28 1984-04-17 Wells John R Serum preparator
US4508676A (en) 1982-07-29 1985-04-02 Sorensen Jens Ole Core stabilization by sequential injections
US4492634A (en) 1982-09-28 1985-01-08 Emde Medical Research Pre-evacuated blood collection tube with anti-hemolysis baffle system and centrifugation propelled filtration disc and efficient serum-from cells separator
US4470936A (en) 1982-09-29 1984-09-11 Owens-Illinois, Inc. Method and apparatus for coinjecting two thermoplastic materials
FR2536671B1 (en) 1982-11-26 1988-06-10 Sartorius Gmbh FILTERING APPARATUS FOR LIQUIDS, STATIC MEMBRANE TYPE
US4487700A (en) 1983-02-18 1984-12-11 Technicon Instruments Corporation Method and apparatus for separating lymphocytes from anticoagulated blood
FI833207A0 (en) * 1983-09-08 1983-09-08 Farmos Oy REAKTIONSKAERL FOER IMMUNOLOGISKA BESTAEMNINGAR
US4701292A (en) 1984-09-13 1987-10-20 Husky Injection Molding Systems Ltd. Method for pressure molding objects of different resins
CA1291098C (en) 1984-12-04 1991-10-22 Albert August Luderer Lymphocyte collection tube
US4917801A (en) 1984-12-04 1990-04-17 Becton Dickinson And Company Lymphocyte collection tube
US4567754A (en) 1985-03-29 1986-02-04 Wardlaw Stephen C Measurement of small heavy constituent layer in stratified mixture
US4602995A (en) 1985-05-20 1986-07-29 Technicon Instruments Corporation Liquid level adjusting and filtering device
SE448323B (en) 1985-08-27 1987-02-09 Ersson Nils Olof PROCEDURE AND PROCEDURE TO SEPARATE SERUM OR PLASMA FROM BLOOD
JPH0657417B2 (en) 1985-11-15 1994-08-03 ティーディーケイ株式会社 Molding die
US4845869A (en) 1986-01-24 1989-07-11 Jm Industries, Inc. Advertising display unit for a public telephone
US5112490A (en) 1986-02-19 1992-05-12 Jon Turpen Sample filtration, separation and dispensing device
US4717324A (en) 1986-05-12 1988-01-05 Husky Injection Molding Systems, Inc. Coinjection of hollow articles and preforms
GB8616460D0 (en) 1986-07-05 1986-08-13 Metal Box Plc Manufacture of articles
US4832851A (en) 1987-02-02 1989-05-23 W. R. Grace & Co. Centrifugal force-enhanced filtration of fluids
US5030341A (en) 1987-04-03 1991-07-09 Andronic Technologies, Inc. Apparatus for separating phases of blood
US5019243A (en) 1987-04-03 1991-05-28 Mcewen James A Apparatus for collecting blood
US4828716A (en) 1987-04-03 1989-05-09 Andronic Devices, Ltd. Apparatus and method for separating phases of blood
US4818386A (en) 1987-10-08 1989-04-04 Becton, Dickinson And Company Device for separating the components of a liquid sample having higher and lower specific gravities
US4877520A (en) 1987-10-08 1989-10-31 Becton, Dickinson And Company Device for separating the components of a liquid sample having higher and lower specific gravities
US4918690A (en) 1987-11-10 1990-04-17 Echelon Systems Corp. Network and intelligent cell for providing sensing, bidirectional communications and control
US4957682A (en) 1988-01-19 1990-09-18 Kamaya Kagaku Kogyo Co., Ltd. Method of injection molding a three-layered container
US4935184A (en) 1988-02-05 1990-06-19 Primtec Stabilized injection molding when using a common mold part with separate complimentary mold parts
US4843869A (en) * 1988-03-21 1989-07-04 Levine Robert A Method for measuring hemoglobin
US4957637A (en) 1988-05-23 1990-09-18 Sherwood Medical Company Serum separator system for centrifuge with piercable membrane
EP0348582A1 (en) * 1988-07-01 1990-01-03 CENTRO MARKET PESCA SPORT DI GINO FRIGOLI &amp; C. S.N.C. A ballast that may be screw-like inserted in floats for fishing lines
US4954264A (en) 1989-02-02 1990-09-04 Becton-Dickinson And Company Apparatus for separating mononuclear cells from blood and method of manufacturing and using the same
US5007892A (en) 1989-03-20 1991-04-16 Eastman Kodak Company Phase separation container with fixed means preventing remixing
CA2014119C (en) 1989-04-07 2000-11-21 Diane L. Aunet Methods and devices for the separation of plasma or serum from whole blood, collection of plasma or serum, and reagent delivery system
CA2011100C (en) 1989-05-24 1996-06-11 Stephen C. Wardlaw Centrifuged material layer measurements taken in an evacuated tube
US5171533A (en) 1989-07-31 1992-12-15 Fine Richard A Biological assay cassette and method for making same
WO1991007648A1 (en) 1989-11-08 1991-05-30 Fmc Corporation Combined centrifuge tube and porous selection means for separation and recovery of biological materials
JPH03270701A (en) 1990-03-19 1991-12-02 Terumo Corp Centrifugal separation tube and separation of cell
JPH0774772B2 (en) 1990-12-31 1995-08-09 エイ. レビン ロバート Blood sampling assembly, target cell collection method and target component collection method
US5137832A (en) 1991-01-02 1992-08-11 Becton Dickinson & Company Quantification of fibrinogen in whole blood samples contained in a tube using a float to separate materials
US5269927A (en) 1991-05-29 1993-12-14 Sherwood Medical Company Separation device for use in blood collection tubes
US5236604A (en) 1991-05-29 1993-08-17 Sherwood Medical Company Serum separation blood collection tube and the method of using thereof
US5203825A (en) 1991-06-07 1993-04-20 Becton, Dickinson And Company Capillary tube assembly including a vented cap
JP2582191B2 (en) 1991-06-25 1997-02-19 株式会社ニッショー Gel-like material
JP2550232B2 (en) 1991-06-25 1996-11-06 株式会社ニッショー Blood separating agent
JP3063799B2 (en) 1991-10-16 2000-07-12 株式会社ニッショー Blood separation agent
DK167517B1 (en) 1991-11-11 1993-11-15 Squibb & Sons Inc CONTAINER FOR INCLUSION AND SEPARATION OF A FLUID, PRETTY BLOOD PLASMA, IN ITS INGREDIENTS
US5251474A (en) 1992-01-16 1993-10-12 Wardlaw Stephen C Centrifuged material layer measurement in an evacuated tube
JPH0581712U (en) * 1992-04-03 1993-11-05 新潟化工株式会社 Blood separation member
US5271852A (en) 1992-05-01 1993-12-21 E. I. Du Pont De Nemours And Company Centrifugal methods using a phase-separation tube
US5282981A (en) 1992-05-01 1994-02-01 E. I. Du Pont De Nemours And Company Flow restrictor-separation device
US5393494A (en) 1992-05-28 1995-02-28 Diasys Corporation Apparatus for drawing fluid sample, components thereof, and slide assembly for use therewith
US5354483A (en) 1992-10-01 1994-10-11 Andronic Technologies, Inc. Double-ended tube for separating phases of blood
US5389265A (en) 1993-06-02 1995-02-14 E. I. Du Pont De Nemours And Company Phase-separation tube
US5456885A (en) 1993-07-12 1995-10-10 Coleman; Charles M. Fluid collection, separation and dispensing tube
JPH07103969A (en) 1993-08-13 1995-04-21 Niigata Kako Kk Blood separation member and blood collecting tube for blood separation
US5455009A (en) 1993-09-14 1995-10-03 Becton, Dickinson And Company Blood collection assembly including clot-accelerating plastic insert
US5489386A (en) 1994-01-31 1996-02-06 Applied Imaging Density gradient medium for the separation of cells
US5422018A (en) 1994-01-31 1995-06-06 Applied Imaging Centrifuge tube and adaptor
US5432054A (en) 1994-01-31 1995-07-11 Applied Imaging Method for separating rare cells from a population of cells
US5518615A (en) 1994-04-22 1996-05-21 Becton, Dickinson And Company Blood compatible, shear sensitive gels
US5533518A (en) 1994-04-22 1996-07-09 Becton, Dickinson And Company Blood collection assembly including mechanical phase separating insert
US5556541A (en) 1994-04-26 1996-09-17 Filtertek, Inc. Process for making hermetically sealed filter units and filters made thereby
EP0688652B1 (en) 1994-06-06 2000-06-14 Husky Injection Molding Systems Ltd. Opposed gating injection method
US5511558A (en) 1994-06-06 1996-04-30 Becton, Dickinson And Company Blood collection assembly having additive dispensing means and method for sample collection using same
US5588946A (en) 1994-06-24 1996-12-31 Johnson & Johnson Clinical Diagnostics, Inc. Centrifuge and phase separation
SE9402812D0 (en) 1994-08-19 1994-08-19 Karl Erik Sundstroem Blood collection, plasma separation and high precision plasma dispensing device
US5648223A (en) 1994-08-31 1997-07-15 Activated Cell Therapy, Inc. Methods for enriching breast tumor cells
DK0778944T3 (en) 1994-08-31 2000-05-01 Dendreon Corp Cell separation apparatus and method
US5474687A (en) 1994-08-31 1995-12-12 Activated Cell Therapy, Inc. Methods for enriching CD34+ human hematopoietic progenitor cells
US5840502A (en) 1994-08-31 1998-11-24 Activated Cell Therapy, Inc. Methods for enriching specific cell-types by density gradient centrifugation
US5577513A (en) 1994-08-31 1996-11-26 Activated Cell Therapy, Inc. Centrifugation syringe, system and method
US5646004A (en) 1994-08-31 1997-07-08 Activated Cell Therapy, Inc. Methods for enriching fetal cells from maternal body fluids
US5646263A (en) 1994-09-19 1997-07-08 Promega Corporation High efficiency method for isolating target substances using a multisample separation device
US5575778A (en) 1994-09-21 1996-11-19 B. Braun Melsungen Ag Blood-taking device
GB9420641D0 (en) 1994-10-13 1994-11-30 Iatros Ltd Blood sample analysis
US5560830A (en) * 1994-12-13 1996-10-01 Coleman; Charles M. Separator float and tubular body for blood collection and separation and method of use thereof
WO1996024058A1 (en) 1995-01-30 1996-08-08 Niigata Engineering Co., Ltd. Component separation member and component separator equipped with said member
US5704888A (en) 1995-04-14 1998-01-06 Cobe Laboratories, Inc. Intermittent collection of mononuclear cells in a centrifuge apparatus
KR100199313B1 (en) 1995-05-30 1999-06-15 다카노 야스아키 Apparatus for manufacturing carbonated water
JPH0922242A (en) 1995-07-06 1997-01-21 Dainippon Printing Co Ltd Method for controlling diffraction efficiency in hologram recording
US5632905A (en) * 1995-08-07 1997-05-27 Haynes; John L. Method and apparatus for separating formed and unformed components
DE19530969A1 (en) 1995-08-23 1997-02-27 Deutsches Rotes Kreuz Blutspen Device for the flow separation of whole blood as a mixture of liquids into individual blood components of different colors, in particular for the separation of platelet concentrate from buffy coat
EP0766973A1 (en) 1995-09-29 1997-04-09 Becton, Dickinson and Company Blood collection device for plasma separation and method therefor
CA2205656A1 (en) 1995-10-03 1997-04-10 Beckman Instruments, Inc. Axial spin blood separation system and method
ATE219151T1 (en) 1995-11-16 2002-06-15 Michael W Dahm METHOD FOR QUANTIFYING TUMOR CELLS IN A BODY FLUID AND TEST KITS SUITABLE FOR THE SAME
JPH09222427A (en) * 1995-12-11 1997-08-26 Sekisui Chem Co Ltd Blood inspection container
US5736033A (en) 1995-12-13 1998-04-07 Coleman; Charles M. Separator float for blood collection tubes with water swellable material
US5707876A (en) 1996-03-25 1998-01-13 Stephen C. Wardlaw Method and apparatus for harvesting constituent layers from a centrifuged material mixture
JPH09292393A (en) 1996-04-26 1997-11-11 Sekisui Chem Co Ltd Separation method for serum
US5755360A (en) 1996-07-11 1998-05-26 Aptargroup, Inc. Multi-material, multi-shot, injection molded dispensing closure having a removable seal
US6161712A (en) 1996-07-22 2000-12-19 Becton Dickinson And Company Ball and socket closure
AT404317B (en) 1996-08-02 1998-10-27 Greiner & Soehne C A LOCKING DEVICE, DISCONNECTING DEVICE AND RECEIVING CONTAINER FOR A RECEIVING DEVICE
US5785925A (en) 1996-08-29 1998-07-28 Saigene Corporation Centrifuge tube phase separation plug
US5731391A (en) 1996-09-27 1998-03-24 Henkel Corporation Fluid composition for physiological separations with enhanced resistance to inward migration of substances requiring accurate dosage monitoring
US6001087A (en) 1996-09-30 1999-12-14 Becton Dickinson And Company Collection assembly with a reservoir
US5762881A (en) 1996-10-29 1998-06-09 Bohdan Automation, Inc. Apparatus for multiple, simultaneous synthesis of organic compounds
US5902276A (en) 1996-11-26 1999-05-11 Liebel-Flarsheim Company Two-shot molded plunger
JP3270701B2 (en) 1996-12-26 2002-04-02 株式会社エヌ・ティ・ティ・ドコモ Mobile radio
US6225123B1 (en) 1997-04-30 2001-05-01 Becton Dickinson And Company Additive preparation and method of use thereof
US5906744A (en) 1997-04-30 1999-05-25 Becton Dickinson And Company Tube for preparing a plasma specimen for diagnostic assays and method of making thereof
US5860937A (en) 1997-04-30 1999-01-19 Becton, Dickinson & Company Evacuated sample collection tube with aqueous additive
AT409725B (en) 1997-05-12 2002-10-25 Greiner & Soehne C A SEPARATOR
US7745106B2 (en) 1997-06-24 2010-06-29 Cascade Medical Enterprises, Llc Methods and devices for separating liquid components
US6979307B2 (en) 1997-06-24 2005-12-27 Cascade Medical Enterprises Llc Systems and methods for preparing autologous fibrin glue
US6227331B1 (en) 1997-08-18 2001-05-08 Paul Kristen, Inc. Bridge platform
US20020156439A1 (en) 1997-09-12 2002-10-24 Michael J. Iskra Collection container assembly
EP0922556A1 (en) 1997-12-03 1999-06-16 FOBOHA GmbH Injection moulding machine with movable moulds, mounting device as well as mould carrier for such an injection moulding machine
US6074883A (en) 1998-03-02 2000-06-13 Becton, Dickinson And Company Method for using disposable blood tube holder
US6106261A (en) 1998-08-31 2000-08-22 John W. Von Holdt Apparatus for molding a one-piece article in a single molding operation using two different plastic materials
JP3142521B2 (en) 1998-11-04 2001-03-07 大成プラス株式会社 Needlestick stopcock and its manufacturing method
US6428527B1 (en) 1998-11-10 2002-08-06 Becton, Dickinson And Company Method for coating a blood collection device
WO2000030756A1 (en) 1998-11-26 2000-06-02 Dainippon Seiki Co., Ltd. Precipitation tube for centrifugal separation
US6406671B1 (en) 1998-12-05 2002-06-18 Becton, Dickinson And Company Device and method for separating components of a fluid sample
JP4398033B2 (en) * 1998-12-05 2010-01-13 ベクトン・ディキンソン・アンド・カンパニー Assembly for separating fluid sample components
US20020132367A1 (en) * 1998-12-05 2002-09-19 Miller Henry F. Device and method for separating components of a fluid sample
US6280400B1 (en) 1998-12-05 2001-08-28 Becton Dickinson And Company Device and method for separating component of a liquid sample
US6479298B1 (en) 1998-12-05 2002-11-12 Becton, Dickinson And Company Device and method for separating components of a fluid sample
US6516953B1 (en) 1998-12-05 2003-02-11 Becton, Dickinson And Company Device for separating components of a fluid sample
US6497325B1 (en) 1998-12-05 2002-12-24 Becton Dickinson And Company Device for separating components of a fluid sample
JP4067208B2 (en) 1998-12-29 2008-03-26 シスメックス株式会社 Biological specific reaction measuring method and apparatus
US6296796B1 (en) 1999-02-02 2001-10-02 Trw Inc. Method for molding a two-material part using a rotatable mold insert member
DE19904267A1 (en) 1999-02-03 2000-08-10 Michael W Dahm Method for the enrichment of tumor cells from a body fluid and a suitable kit for this
DK1033318T3 (en) 1999-02-18 2003-01-06 Foboha Gmbh Tube collar and method of manufacture thereof
ATE401125T1 (en) 1999-05-28 2008-08-15 Bio Data Corp METHOD AND DEVICE FOR DIRECT SAMPLING OF A FLUID FOR MICROFILTRATION
US6248844B1 (en) 1999-06-04 2001-06-19 Henkel Corporation Method of partitioning blood using polyesters
US6302919B1 (en) 1999-07-20 2001-10-16 Brian Chambers Reverse-flow centrifugal filtration method
AU8033200A (en) 1999-08-25 2001-03-19 Leland L. Bass Centrifuge tube apparatus
DE29917164U1 (en) 1999-09-29 2001-02-22 Boucherie Nv G B Tool for injection molding toothbrush bodies from several plastic components
US6803022B2 (en) 1999-12-06 2004-10-12 Becton, Dickinson And Company Device and method for separating components of a fluid sample
US6537503B1 (en) 1999-12-03 2003-03-25 Becton Dickinson And Company Device and method for separating components of a fluid sample
US6471069B2 (en) * 1999-12-03 2002-10-29 Becton Dickinson And Company Device for separating components of a fluid sample
US7947236B2 (en) * 1999-12-03 2011-05-24 Becton, Dickinson And Company Device for separating components of a fluid sample
US6793892B1 (en) 1999-12-06 2004-09-21 Volker Niermann Device and method for separating components of a fluid sample
US6409528B1 (en) * 1999-12-06 2002-06-25 Becton, Dickinson And Company Device and method for collecting, preparation and stabilizing a sample
AT414209B (en) 2000-03-17 2006-10-15 Greiner Bio One Gmbh COLLECTION TANK FOR LIQUIDS
AU2001255440A1 (en) 2000-04-18 2001-11-07 Large Scale Proteomics Corporation Method and apparatus for making density gradients
GB0010180D0 (en) 2000-04-26 2000-06-14 City Tech Improvements relating to electrochemical gas sensors
JP4553512B2 (en) 2000-04-28 2010-09-29 三菱エンジニアリングプラスチックス株式会社 Injection molding method for molded product having hollow part
US7077273B2 (en) 2000-04-28 2006-07-18 Harvest Technologies Corporation Blood component separator disk
US20030039717A1 (en) 2000-05-01 2003-02-27 Hwang C. Robin Injection molding of thermoplastic parts
WO2002009840A1 (en) 2000-07-28 2002-02-07 Large Scale Proteomics Corporation Method and apparatus for unloading gradients
US20020020416A1 (en) 2000-08-11 2002-02-21 David Namey Two-shot injection molded nasal/oral mask
US6465256B1 (en) 2000-08-26 2002-10-15 Becton, Dickinson And Company Device and method for separating components of a fluid sample
US20020094304A1 (en) 2000-12-22 2002-07-18 Tom Yang High speed liquid deposition apparatus for microarray fabrication
US7205157B2 (en) 2001-01-08 2007-04-17 Becton, Dickinson And Company Method of separating cells from a sample
EP1226857A3 (en) 2001-01-25 2003-07-23 Haldor Topsoe A/S Method and apparatus for separation of a liquid phase from a two phase fluid flow in a low density fraction and a high density fraction
EP1226916A1 (en) 2001-01-29 2002-07-31 FOBOHA GmbH Device and method for producing objects made of plastic
US7195606B2 (en) 2001-02-26 2007-03-27 Erythrosave Ltd. Syringe and a method for its utilization in analysis
US6817256B2 (en) 2001-02-27 2004-11-16 Alfa Wassermann, Inc. Pipette sampling system
WO2002073163A1 (en) 2001-03-07 2002-09-19 The Texas A & M University Systems Density gradient solutions of metal ion chelate complexes
JP2005098704A (en) 2001-03-13 2005-04-14 Hajime Ogata Method for fractionating particulate of different specific gravity
AT500247B1 (en) 2001-03-30 2007-06-15 Greiner Bio One Gmbh RECEIVING DEVICE, ESPECIALLY FOR BODY FLUIDS, WITH A SEPARATION DEVICE AND SEPARATING DEVICE THEREFOR
KR20040014560A (en) 2001-06-18 2004-02-14 벡톤 디킨슨 앤드 컴퍼니 Multilayer containers and process for forming multilayer containers
US6623688B2 (en) 2001-06-28 2003-09-23 Cascade Engineering, Inc. Gas-assisted two-shot injection molding process
ES2302808T3 (en) 2001-07-27 2008-08-01 Becton, Dickinson And Company LUER CONNECTOR ASSEMBLY.
US20030028154A1 (en) 2001-07-31 2003-02-06 Milton Ross Polymer hypodermic needle and process for producing same design and process for making all-plastic molded-in-one piece hypodermic needle
WO2003035888A1 (en) 2001-08-28 2003-05-01 Wen-Tien Chen Cell separation matrix
DE10144892B4 (en) 2001-09-12 2005-09-08 Disetronic Licensing Ag Multilayer plastic body
DE60231236D1 (en) 2001-12-04 2009-04-02 Sekisui Chemical Co Ltd COMPOSITION FOR SEPARATING BLOOD DREAM OR PLASMA AND THIS CONTAINING VAPOR FOR BLOOD TESTING
JP2003185653A (en) 2001-12-14 2003-07-03 Sekisui Chem Co Ltd Blood sedimentation tube
US7992725B2 (en) 2002-05-03 2011-08-09 Biomet Biologics, Llc Buoy suspension fractionation system
US20030205538A1 (en) 2002-05-03 2003-11-06 Randel Dorian Methods and apparatus for isolating platelets from blood
US7374678B2 (en) 2002-05-24 2008-05-20 Biomet Biologics, Inc. Apparatus and method for separating and concentrating fluids containing multiple components
US7832566B2 (en) 2002-05-24 2010-11-16 Biomet Biologics, Llc Method and apparatus for separating and concentrating a component from a multi-component material including macroparticles
JP2005524850A (en) 2002-05-07 2005-08-18 ベクトン・ディキンソン・アンド・カンパニー Collection device
KR100945222B1 (en) 2002-05-13 2010-03-03 벡톤 디킨슨 앤드 컴퍼니 Protease inhibitor sample collection system
US7845499B2 (en) 2002-05-24 2010-12-07 Biomet Biologics, Llc Apparatus and method for separating and concentrating fluids containing multiple components
AU2003249642A1 (en) 2002-05-24 2003-12-12 Biomet Manufacturing Corp. Apparatus and method for separating and concentrating fluids containing multiple components
US20060278588A1 (en) 2002-05-24 2006-12-14 Woodell-May Jennifer E Apparatus and method for separating and concentrating fluids containing multiple components
US20040059255A1 (en) 2002-09-23 2004-03-25 Dimitrios Manoussakis High bias gel tube and process for making tube
JP4344696B2 (en) 2002-09-27 2009-10-14 バイオイー, インコーポレイテッド Cell separation composition and cell separation method
WO2011126866A1 (en) 2010-03-30 2011-10-13 Battelle Memorial Institute Buffy coat separator float systems and methods
US7074577B2 (en) 2002-10-03 2006-07-11 Battelle Memorial Institute Buffy coat tube and float system and method
US7220593B2 (en) * 2002-10-03 2007-05-22 Battelle Memorial Institute Buffy coat separator float system and method
US20040256331A1 (en) 2002-10-04 2004-12-23 Arking E. James System and method for fractionation of a centrifuged sample
EP1549224A1 (en) 2002-10-10 2005-07-06 Becton Dickinson and Company Sample collection system with caspase inhibitor
BE1015362A6 (en) 2002-10-14 2005-02-01 Boutech Nv Manufacture of plungers for medical syringes comprises forming plunger or its part through manufacturing a piston body and plunger body or its part using injection molding, and injecting plunger body or its part against piston body
CA2515576C (en) 2003-02-13 2013-04-30 Becton, Dickinson And Company Devices for component removal during blood collection, and uses thereof
CN1822903B (en) 2003-05-19 2012-04-18 丰收技术股份有限公司 Method and apparatus for separating fluid components
FR2855078B1 (en) 2003-05-23 2005-07-01 Inst Francais Du Petrole SEPARATION DEVICE COMPRISING A TUBULAR ELECTRO-COALESCURER
US7736593B2 (en) 2003-08-05 2010-06-15 Becton, Dickinson And Company Device and methods for collection of biological fluid sample and treatment of selected components
US20050033237A1 (en) 2003-08-08 2005-02-10 James Fentress Catheter assemblies and injection molding processes and equipment for making the same
US20050124965A1 (en) 2003-12-08 2005-06-09 Becton, Dickinson And Company Phosphatase inhibitor sample collection system
EP1559529A3 (en) 2004-02-02 2005-10-19 The Procter & Gamble Company Preforms made of two or more materials and processes for obtaining them
CA2458497A1 (en) 2004-02-24 2005-08-24 Cme Telemetrix Inc. Spectrophotometric analysis of plasma or serum in a sealed tube
JP2007531894A (en) 2004-04-05 2007-11-08 バイオ/データ・コーポレイション Clot holder
US20060036231A1 (en) 2004-05-27 2006-02-16 Conard William A Injection port and method of making the same
US20060116270A1 (en) 2004-07-16 2006-06-01 Mehdi Hatamian Centrifuge system
US6976509B1 (en) 2004-08-02 2005-12-20 Kirvan Clifford J Method and apparatus for pressurizing plastic pipe
CA2517940A1 (en) 2004-09-24 2006-03-24 Ems-Chemie Ag Injection molding method for manufacturing plastic parts
AT414322B (en) * 2004-11-29 2007-03-15 Greiner Bio One Gmbh SEPARATING DEVICE, ESPECIALLY FOR BODY FLUIDS, AND RECORDING EQUIPMENT WITH SUCH A SEPARATING DEVICE
EP1848473B1 (en) 2005-02-07 2013-05-22 Hanuman LLC Plasma concentrator device
US7708152B2 (en) 2005-02-07 2010-05-04 Hanuman Llc Method and apparatus for preparing platelet rich plasma and concentrates thereof
US7866485B2 (en) 2005-02-07 2011-01-11 Hanuman, Llc Apparatus and method for preparing platelet rich plasma and concentrates thereof
EP1693109A1 (en) 2005-02-21 2006-08-23 Hexal Ag Container for separating tumor cells
US7275682B2 (en) 2005-03-24 2007-10-02 Varian, Inc. Sample identification utilizing RFID tags
US7445152B2 (en) 2005-05-06 2008-11-04 Becton, Dickinson And Company Label system and method for label alignment and placement
WO2006135856A2 (en) 2005-06-10 2006-12-21 Smart Medical Technologies, Inc. Valve for facilitating and maintaining fluid separation
WO2007000986A1 (en) 2005-06-27 2007-01-04 Sekisui Chemical Co., Ltd. Blood-separating filter device and vacuum sampling tube
US7158854B1 (en) 2005-07-20 2007-01-02 Mgs Mfg. Group, Inc. Universal mold vacuum system
US8048297B2 (en) 2005-08-23 2011-11-01 Biomet Biologics, Llc Method and apparatus for collecting biological materials
US7771590B2 (en) 2005-08-23 2010-08-10 Biomet Manufacturing Corp. Method and apparatus for collecting biological materials
AT502522A3 (en) 2005-10-04 2007-12-15 Greiner Bio One Gmbh DISCONNECTION DEVICE, RECORDING DEVICE AND METHOD OF DISCONNECTING
US8048678B2 (en) 2005-10-27 2011-11-01 Ecw Therapeutics, Inc. Cell separation method and apparatus
US20070096364A1 (en) 2005-11-03 2007-05-03 Mgs Mfg. Group, Inc. Sandwich molding system with independent runner passages
EP1795894A1 (en) 2005-12-06 2007-06-13 Roche Diagnostics GmbH Plasma separation on a disk like device
NO329626B1 (en) 2005-12-28 2010-11-22 Hamworthy Plc Separator and method of separation
US20070190148A1 (en) 2006-02-14 2007-08-16 Peter Cronin Gel compositions, apparatuses and fluid separation methods
US7736337B2 (en) 2006-02-16 2010-06-15 Smiths Medical, Asd, Inc. Sealing catheter hub attachment
DE102006021404A1 (en) 2006-05-08 2007-11-15 Roche Diagnostics Gmbh Liquid container with removal chimney
WO2008038012A1 (en) 2006-09-28 2008-04-03 Sterilin Limited Sampling tube
CN1970130B (en) 2006-10-27 2011-05-25 威海戥同测试设备有限公司 Liquid-liquid separation device
US7767087B2 (en) 2007-01-05 2010-08-03 Wilson Kelce S Floating filter holder
NL1033365C2 (en) 2007-02-09 2008-08-12 Medavinci Dev B V Device and method for separating and analyzing blood.
WO2008114998A1 (en) 2007-03-21 2008-09-25 Korea Institute Of Machinery & Materials Blood separator using dissolved air flotation
US8328024B2 (en) * 2007-04-12 2012-12-11 Hanuman, Llc Buoy suspension fractionation system
EP2146794B1 (en) 2007-04-12 2016-10-19 Biomet Biologics, LLC Buoy suspension fractionation system
US20100120596A1 (en) 2007-05-23 2010-05-13 Ge Healthcare Bio-Sciences Ab Separation device
WO2009021257A1 (en) 2007-08-13 2009-02-19 Greiner Bio-One Gmbh Medical separator
CA2708218A1 (en) 2007-12-07 2009-06-11 Harvest Technologies Corporation Floating disk for separating blood components
EP2254991B1 (en) 2008-02-29 2018-08-22 Biomet Manufacturing, LLC A system and process for separating a material
US8518272B2 (en) 2008-04-04 2013-08-27 Biomet Biologics, Llc Sterile blood separating system
US7947186B2 (en) 2008-05-22 2011-05-24 Statspin, Inc. Centrifugal device and method for fluid component separation
US8012077B2 (en) 2008-05-23 2011-09-06 Biomet Biologics, Llc Blood separating device
CN102149472B (en) 2008-07-21 2014-08-13 贝克顿·迪金森公司 Density phase separation device
JP5385383B2 (en) 2008-07-21 2014-01-08 ベクトン・ディキンソン・アンド・カンパニー Density phase separator
BRPI0916364B1 (en) 2008-07-21 2020-09-15 Becton, Dickinson And Company MECHANICAL SEPARATOR, ASSEMBLY METHOD OF THE SAME, AND SEPARATION SET
US8313954B2 (en) 2009-04-03 2012-11-20 Biomet Biologics, Llc All-in-one means of separating blood components
KR101578075B1 (en) * 2009-04-20 2015-12-17 삼성디스플레이 주식회사 Method of detecting a touch and device of detecting a touch for performing the same
KR20100116106A (en) 2009-04-21 2010-10-29 에스타 테크날러지스 리미티드 Assembly, kit and method for preparing platelet-rich plasma (prp)
ES2747961T3 (en) * 2009-05-15 2020-03-12 Becton Dickinson Co Density phase separation device
US9272083B2 (en) 2009-05-29 2016-03-01 Endocellutions, Inc. Apparatus and methods for aspirating and separating components of different densities from a physiological fluid containing cells
US9011800B2 (en) 2009-07-16 2015-04-21 Biomet Biologics, Llc Method and apparatus for separating biological materials
US7927563B1 (en) 2009-10-13 2011-04-19 Cytomedix, Inc. Kit for separation of biological fluids
WO2011069145A2 (en) 2009-12-04 2011-06-09 Becton, Dickinson And Company Blood collection tube with separation barrier
DE102010000645B4 (en) 2010-03-05 2017-08-24 Kabe-Labortechnik Gmbh Method for phase separation of medical fluid samples and sample container for medical fluid samples
WO2011126867A1 (en) 2010-03-30 2011-10-13 Battelle Memorial Institute Buffy coat separator float systems and methods
CA2795040A1 (en) 2010-03-30 2011-10-13 Battelle Memorial Institute Buffy coat separator float systems and methods
US8377395B2 (en) 2010-04-29 2013-02-19 Charles M. Coleman Integrated blood specimen processor
WO2012003873A1 (en) 2010-07-08 2012-01-12 Matthias Zumstein Device and method for collecting platelet concentrate
US8819307B1 (en) * 2011-12-29 2014-08-26 Emc Corporation Identification and use of preferred path groups in host computer based on differential performance
US10373157B1 (en) * 2015-07-30 2019-08-06 Payability, LLC Computer system for accelerating resource transfers based on non-finalized operation information

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