CA2775478C - System and method for the continuous detection of impacts on pipelines for the transportation of fluids, particularly suitable for underwater pipelines - Google Patents

System and method for the continuous detection of impacts on pipelines for the transportation of fluids, particularly suitable for underwater pipelines Download PDF

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Publication number
CA2775478C
CA2775478C CA2775478A CA2775478A CA2775478C CA 2775478 C CA2775478 C CA 2775478C CA 2775478 A CA2775478 A CA 2775478A CA 2775478 A CA2775478 A CA 2775478A CA 2775478 C CA2775478 C CA 2775478C
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pipeline
acoustic waves
impact
pipelines
sensor
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CA2775478A
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French (fr)
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CA2775478A1 (en
Inventor
Mauro Gianni Dalmazzone
Gianpietro De Lorenzo
Giuseppe Giunta
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Enivibes Srl
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Eni SpA
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F17STORING OR DISTRIBUTING GASES OR LIQUIDS
    • F17DPIPE-LINE SYSTEMS; PIPE-LINES
    • F17D5/00Protection or supervision of installations
    • F17D5/02Preventing, monitoring, or locating loss
    • F17D5/06Preventing, monitoring, or locating loss using electric or acoustic means
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S11/00Systems for determining distance or velocity not using reflection or reradiation
    • G01S11/14Systems for determining distance or velocity not using reflection or reradiation using ultrasonic, sonic, or infrasonic waves

Abstract

The present invention relates to a system and method for the continuous detection of impacts on pipelines for the fluid transportation, particularly on pipelines placed on the seabed, wherein the system comprises at least two sensors (11, 12) each installed in correspondence with an end of a section subject to detection (x) of a pipeline (13) and it is characterized in that a first sensor (12) of said at least two sensors (11, 12) is suitable for detecting first acoustic waves (14), which propagate along a first transmission phase associated with said pipeline (13) and a second sensor (11) of said at least two sensors (11, 12) is suitable for detecting second acoustic waves (15) which propagate along a second transmission phase associated with said pipeline (13), the second acoustic waves having different elastic features with respect to said first acoustic waves.

Description

SYSTEM AND METHOD FOR THE CONTINUOUS DETECTION OF IMPACTS ON PIPELINES FOR THE

TRANSPORTATION OF FLUIDS, PARTICULARLY SUITABLE FOR UNDERWATER PIPELINES
The present invention relates to a system and method for the continuous detection of impacts on pipelines used for the fluids transportation, particularly on pipelines positioned on the seabed.
For detecting impacts on pipelines used for the fluids transportation, the use is currently known, a plurality of acoustic sensors distributed along the length of the pipeline, suitable for detecting the presence of waves generated by an impact in the fluid inside the pipeline.
The use of sensors such as hydrophones or alternatively accelerometer, for example, is known.
As schematically illustrated in figures la and lb, the position and instant of the impact 101 are determined on the basis of surveys effected by two hydrophones 102 or two accelerometers 102' situated at the two ends of a section subject to the length .x of a pipeline 103 in, which the impact 101 takes place. The wavefronts 104,104' generated by the impact 101, propagating homodirectionally in the fluid away from the generation point, move, in fact, in both directions along the development of the pipeline 103, reaching the two sensors 102, 102' in times depending on the relative distance between the same and the impact point.
On the basis of the time difference between the surveys of the arrivals of the two wavefronts 104, it is possible to determine the relative distance between the impact point 101 and the two sensors 102,102', the intensity of the impact and also the generation instant of the wavefronts.
This detection system and method are particularly suitable for easily accessible pipelines. In the case of hydrophone systems, for example, the sensors must be installed along the whole development of the pipeline so as to be in contact with the fluid inside the same.
Also in the case of accelerometer systems, the sensors must be installed along the whole development of the pipeline and in particular, so as to be in direct contact with the outer surface of the same.
For the detection, the pipeline is divided into a plurality of sections subject to detection x having a length corresponding to the detection range of the particular sensor used, which in the case of hydrophones and accelerometers corresponds to about 20-50 km, and the sensors are installed at the ends of the sections subject to detection defined.
Although this system provides good detection results in terms of precision and survey delays, it cannot be used in the case of installations which are not easily reached.
-2-In the case of underwater pipelines, for example, the installation of hydrophones or accelerometers along the section of pipelines positioned and possibly laid on the sea bottom would lead to an alteration in the structure or coating of the pipelines, thus weakening the whole transportation system which would no longer be integral.
Furthermore, sensors installed on the seabed would create either problems relating to the feeding or also considerable maintenance problems, considering the difficult accessibility to these.
These systems, moreover, cannot be applied to underwater pipelines already launched, as the positioning of the sensors along the section of pipeline positioned on the sea bottom is extremely difficult.
The installation of hydrophones for detecting impacts on underwater pipelines could be effected in correspondence with the two starting and arrival shores, the distance between the shores however is generally such as to define a detection section having a much greater length than the capacity of the sensors.
It would therefore not be possible to detect signals useful for determining the position, intensity and impact instant at the two ends of such a detection section.
The systems currently known cannot therefore be
-3-used for detecting impacts on underwater pipelines.
There is however a great necessity for monitoring impacts along the sections of pipelines installed at the sea bottom, and in particular in the section close to the shore.
In underwater pipelines, it is currently possible to only detect the presence of an impact which causes damage to the pipe by determining the leakage of fluid being transported, corresponding to a lack of or decrease in the pressure of the same at the receiving end, or by the sighting of leakages emerging on the surface.
The known systems for detecting impacts on pipelines for the fluids transportation, moreover, cannot be applied to pipelines which are only accessible on one side, such as for example risers in production lines from underwater reservoirs. In these pipelines, a detection section having both ends accessible, in correspondence with which acoustic sensors can be installed is not in fact available.
An objective of the present invention is to overcome the limitations described above and in particular to conceive a system for the continuous detection of impacts on pipelines for the transportation of fluids which can also be effectively applied to underwater installations of pipelines.
Another objective of the present invention is to
-4-provide a system for the continuous detection of impacts on pipelines for the fluids transportation which can be easily installed as it does not require the positioning of sensors along sections of pipeline positioned at the sea bottom.
A further objective of the present invention is to provide a system for the continuous detection of impacts on pipelines for the transportation of fluids which can also be used for pipelines accessible from one side only.
Last but not least objective of the present invention is that of conceiving a method for the continuous detection of impacts on pipelines for the transportation of fluids which guarantees a high detection precision of both the position in which the impact has taken place and also the instant and intensity of the impact in order to determine the entity of damage suffered by the pipeline.
These and other objectives according to the present invention are achieved by providing a method for continuous detection of impacts on pipelines for fluids transportation, comprising:
detecting arrival of first acoustic waves generated by an impact which has taken place in a section subject to length of a pipeline through a first sensor installed at one end of the section subject to length, the pipeline including an underwater section that is located underwater and a shore section that is located at a shore, the first acoustic waves propagating in a first acoustic wave transmission phase
5 associated with the pipeline, and the first acoustic wave transmission phase being a mantle of the pipeline;
detecting arrival of second acoustic waves generated by the impact which has taken place in the section subject to length of the pipeline through a second sensor installed at the same one end of the section subject to length, the one end being located at the shore section of the pipeline, the second acoustic waves having different wave characteristics and a different attenuation index with respect to the first acoustic waves, the second acoustic waves propagating in a second acoustic wave transmission phase associated with the pipeline, and the second acoustic wave transmission phase being a fluid inside the pipeline;
time synchronizing the first sensor and the second sensor;
determining the time difference Lt between arrivals of the first and second acoustic waves;
localizing the impact by identifying a position of the impact along the pipeline on the basis of the determined time difference, the localizing of the impact calculating the distance from the first and second sensor according to equation d=((v1*v2)/4v)*Lt, where vi and v2 are the propagation rates of the first acoustic waves and of the second acoustic waves along the mantle of the pipeline and in the fluid inside the pipeline, respectively, and [Iv is a difference between the two propagation rates vi and v2;
5a determining generation instant of the first and the second acoustic waves generated by the impact, starting from an instant of arrival of the first acoustic waves at the first sensor and subtracting an interval determined from a ratio between the calculated distance d and the propagation rate vi of the first acoustic waves along the mantle of the pipeline; and determining detected intensity of the first and the second acoustic waves generated by the impact on the basis of the position of the impact determined by the localizing and attenuation factors of the first and the second acoustic waves along the pipeline, by adding to intensity revealed, attenuation in the respective acoustic wave transmission phase calculated by multiplying the attenuation index of the acoustic wave transmission phase by the calculated distance d.
The characteristics and advantages of a system and method for the continuous detection of impacts on _________________________ 5b i pipelines for the transportation of fluids according to the present invention will appear more evident from the following illustrative and non-limiting description, referring to the enclosed schematic drawings, in which:
- figure la is a schematic representation of a detection of an impact on an underground pipeline monitored by means of a first known system, based on the use of hydrophones, for revealing impacts on pipelines for the transportation of fluids;
- figure lb is a schematic representation of a detection of an impact on an underground pipeline monitored by means of a second known system, based on the use of accelerometers, for revealing impacts on pipelines for the transportation of fluids;
- figure 2 is a schematic representation of the detection of an impact on a pipeline monitored by means of the system for the detection of impacts on pipelines for the transportation of fluids according to the present invention;
- figure 3 is a schematic illustration of the system of figure 2 installed on a pipeline having an underwater section; , - figure 4 is a block scheme of the method for the detection of impacts on pipelines for the transportation of fluids according to the present invention.
With reference to the figures, these show a system
-6-for the continuous detection of impacts on pipelines for the transportation of fluids, indicated as a whole with 10.
The system 10 according to the present invention comprises at least two sensors 11, 12, each installed in correspondence with at least one end of a section length (x) of a pipeline 13 wherein a first sensor 12, of the at least two sensors, is suitable for detecting first acoustic waves 14 which propagate along the mantle of the pipeline 13 and a second sensor 11, of the at least two sensors, is suitable for detecting second acoustic waves 15 which propagate in the fluid inside the pipeline.
The first sensor 12 is preferably a vibro-acoustic sensor, for example an optical fibre sensor or a longitudinal and/or transversal accelerometer, capable of detecting the vibratory motion 14 propagates along the mantle of the pipeline 13 generated by an impact 16 within a detection range x, for example having a length of up to about 50 km.
Analogously, the second sensor 11 is a hydrophone capable of detecting the presence of a wavefront 15 also generated by the same impact 16, which propagates inside the fluid along the'development of the pipeline 13.
The installation of the at least two sensors 11, 12 suitable for detecting acoustic waves having different
-7-wave characteristics, and in particular different propagation rates and/or attenuation degrees, as they are propagated in different- means, allows an accidental impact 16 to be detected, which has taken place on said section x of the pipeline 13, in terms of position, impact instant and intensity also when both sensors 11, 12 are positioned at the same end of the section length x as illustrated in figure 2.
In particular, the section subject to detection x monitored has a length equal to the capacity of said' sensors 11, 12.
The position, generation instant and intensity of the impact 16 are determined by means of a correlation between the signals registered by both sensors 11, 12.
The waves, in fact, propagate in the fluid and along the mantle of the pipeline 13 with different propagation rates and attenuation degrees, thus reaching the respective sensors 11, 12 at different times and intensities, also when these are substantially situated in the same position.
If the propagation rtes v1,v2 and degree of attenuation of the vibro-acoustic waves in the two means (fluid and mantle) are known, it is possible to determine the relative distance between the impact point 16 and said sensors 11,, 12, in addition to the formation instant and initial intensity of the same 16 on the basis of the time difference and difference in
-8-
9 PCT/1B2010/002330 intensity of the signals revealed by the two sensors 11, 12.
The propagation rates and degree of attenuation of the vibro-acoustic waves are linked to the materials in which they are diffused and can be measured a priori for each of these.
The sensors 11, 12 are preferably arranged in the same position of the pipeline, but the system also functions perfectly when the sensors 11, 12 are at a distance from each other, for example if they are positioned at opposite ends of the section subject to detection x.
The system 10 according to the present invention, can also comprise a greater number of detection sensors 11, 12 substantially positioned in correspondence with at least one end of a section subject to detection x, in order to increase the degree of accuracy of the surveys.
Figure 3 illustrates a possible application of the system 10 for the detection of impacts on underwater pipelines for the transportation of fluids according to the present invention, wherein a pipeline 13 has at least a first underground section 13a upstream, a second section 13b which is close to ground level and is positioned in correspondence with a shore, and also a third underwater section 13c.
Using the simple positioning of the two sensors 11, 12, suitable for detecting acoustic waves having different wave characteristics in correspondence with the second section of pipeline 13b, it is possible to detect the position, generation instant and intensity of possible impacts which take place in the underwater section 13c.
Possible impacts along the first underground section of pipeline 13a can be possibly revealed through traditional systems of the known type, such as, for example, those illustrated in figures la and lb.
Furthermore, for the installation of the system 10, it is preferable but not necessary for there to be a section of pipeline 13b emerging from the ground, as the sensors 11, 12 can also be installed in an underground section of pipeline 13a.
The functioning of the system 10 for the continuous detection of impacts on pipelines for the transportation of fluids is described hereunder on the basis of the embodiment illustrated, wherein both sensors 11, 12 are situated in substantially the same position in correspondence with the same end of a section subject to detection x.
When impacts 16 takes place, the acoustic waves are generated, which propagate in both the fluid inside the pipeline 13, and also along the mantle of said pipeline 13. When propagating along the mantle of the pipeline 13, a first acoustic wave 14 reaches the first sensor
-10-12 which, as it is continuously perceptive, detects the arrival of the first acoustic wave 14 and generates a first corresponding signal (phase 110).
After a time interval Lt, when there is the arrival of a second acoustic wave 15 which propagates through the fluid inside the pipeline 13, the second sensor 11 - also continuously perceptive - detects said arrival and generates (phase 120) a,second signal.
The time interval LA of the arrival of the two acoustic waves 14, 15 is then determined (phase 130) and using the same 8t, the impact 16 is localized (phase 140) by determining the distance d between the two sensors 11, 12 and the point in which the impact has taken place.
In the particular configuration of figure 2, in which the first sensor 12 and second sensor 11 are substantially in the same position, the distance d is calculated on the basis of the following equation:
d = ((vi*v2)/8v)*Lt where v1 and v2 are the propagation rates of the acoustic waves along the mantle of the pipeline 13 and in the fluid inside the 13 itself, respectively, and Lv is the difference between the two rates v1,v2.
Once the distance d has been determined, it is possible to determine the generation instant of the impact starting for example from the instant of arrival of the first acoustic wave 14 in correspondence with
-11-the first sensor 12 and subtracting the interval determined from the ratio between the calculated distance d and the propagation rate vl of the acoustic waves along the mantle of the pipeline 13 (phase 150).
Analogously, it is possible to determine the initial intensity of the impact 16, by adding to the intensity revealed, the attenuation in the respective propagation phase calculated by multiplying the attenuation index of said phase by the distance calculated d (phase 160).
On the basis of the intensity revealed and initial position of the impact, in addition to the attenuation factors of the first and second acoustic waves (14, 15), it is finally possible to estimate the entity of damage on the pipeline 13 (phase 170).
The characteristics of the system and method for the continuous detection of impacts on pipelines for the fluids transportation, object of the present invention, as also the relative advantages, are evident from the above description. .
By contemporaneously using perceptive sensors of at least two types of waves, such as, for example, sensors that detect the waves propagating along the fluid transported and others which detect the waves propagating along the pipeline, and by an appropriate processing of the known data with those revealed by the sensors, it is possible to localize the impact even if
-12-for providing the surveys are provided at the same side with respect to the impact point.
This system can therefore also be successfully applied for the monitoring of the coastal section of underwater pipelines or risers in production lines without the necessity of installing sensors at the sea bottom.
Following an accurate time synchronization of the detection sensors, high precision levels are reached in measuring the time difference that the sensor detects the waves generated after an impact with. In this way, an equally high precision is obtained in the localization of the impact and all the information deriving therefrom such as intensity of the impact and probable effects. Finally, the distance and intensity obtained allow determining with good approximation the entity of the impact and giving indications on the type of damage.
Analogously, the system and method for the continuous detection of impacts on pipelines for the fluids transportation, object of the present invention, can also be conveniently applied to pipelines installed on land, proving to be particularly advantageous in the case of pipelines not uniformly accessible along the whole of their extension, for example for the installation of hydrophones. In this case, the use of the mixed system according to the present invention is
-13-particularly favourable.
Finally, the system and method conceived can obviously undergo numerous modifications and variants, all included in the invention; furthermore all the details can be substituted by technically equivalent elements. In practice, the materials used, as also the dimensions, can vary according to technical requirements.
-14-

Claims (4)

WHAT IS CLAIMED IS:
1. A method for continuous detection of impacts on pipelines for fluids transportation, comprising:
detecting arrival of first acoustic waves generated by an impact which has taken place in a section subject to length of a pipeline through a first sensor installed at one end of the section subject to length, the pipeline including an underwater section that is located underwater and a shore section that is located at a shore, the first acoustic waves propagating in a first acoustic wave transmission phase associated with the pipeline, and the first acoustic wave transmission phase being a mantle of the pipeline;
detecting arrival of second acoustic waves generated by the impact which has taken place in the section subject to length of the pipeline through a second sensor installed at the same one end of the section subject to length, the one end being located at the shore section of the pipeline, the second acoustic waves having different wave characteristics and a different attenuation index with respect to the first acoustic waves, the second acoustic waves propagating in a second acoustic wave transmission phase associated with the pipeline, and the second acoustic wave transmission phase being a fluid inside the pipeline;
time synchronizing the first sensor and the second sensor;

determining the time difference Lt between arrivals of the first and second acoustic waves;
localizing the impact by identifying a position of the impact along the pipeline on the basis of the determined time difference, the localizing of the impact calculating the distance from the first and second sensor according to equation d=((v1*v2)/.DELTA.v)*.DELTA.t, where v1 and v2 are the propagation rates of the first acoustic waves and of the second acoustic waves along the mantle of the pipeline and in the fluid inside the pipeline, respectively, and .DELTA.v is a difference between the two propagation rates v1 and v2;
determining generation instant of the first and the second acoustic waves generated by the impact, starting from an instant of arrival of the first acoustic waves at the first sensor and subtracting an interval determined from a ratio between the calculated distance d and the propagation rate vi of the first acoustic waves along the mantle of the pipeline; and determining detected intensity of the first and the second acoustic waves generated by the impact on the basis of the position of the impact determined by the localizing and attenuation factors of the first and the second acoustic waves along the pipeline, by adding to intensity revealed, attenuation in the respective acoustic wave transmission phase calculated by multiplying the attenuation index of the acoustic wave transmission phase by the calculated distance d.
2. The method for continuous detection of impacts on pipelines for the fluids transportation according to claim 1, wherein the first and second acoustic waves differ in propagation rates.
3. The method for continuous detection of impacts on pipelines for the fluids transportation according to claim 1, further comprising:
estimating an entity of the impact on the basis of the detected intensity of the first and the second acoustic waves, the position of the impact determined by the localizing and the attenuation indexes of the first and the second acoustic waves along the pipeline.
4. The method for continuous detection of impacts on pipelines for the fluids transportation according to claim 1, wherein the first sensor is an accelerometer and the second sensor is a hydrophone.
CA2775478A 2009-09-29 2010-09-15 System and method for the continuous detection of impacts on pipelines for the transportation of fluids, particularly suitable for underwater pipelines Active CA2775478C (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
ITMI2009A001667A IT1399026B1 (en) 2009-09-29 2009-09-29 SYSTEM AND METHOD FOR THE CONTINUOUS DETECTION OF IMPACTS ON CONDUCT FOR THE TRANSPORT OF FLUIDS, PARTICULARLY SUITABLE FOR SUBMARINE PIPES
ITMI2009A001667 2009-09-29
PCT/IB2010/002330 WO2011039589A1 (en) 2009-09-29 2010-09-15 System and method for the continuous detection of impacts on pipelines for the transportation of fluids, particularly suitable for underwater pipelines

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CA2775478A1 CA2775478A1 (en) 2011-04-07
CA2775478C true CA2775478C (en) 2017-08-15

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Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB201103520D0 (en) * 2011-03-02 2011-04-13 Score Group Plc Impact detection and monitoring system
ITMI20122196A1 (en) * 2012-12-20 2014-06-21 Eni Spa METHOD AND SYSTEM FOR REMOTE DETECTION OF THE POSITION OF A PIG DEVICE INSIDE A PRESSURE CONDUCT
EA028210B1 (en) * 2014-05-14 2017-10-31 Эни С.П.А. Method and system for the continuous remote monitoring of the position and advance speed of a pig device inside a pipeline
CN106813108A (en) * 2017-01-18 2017-06-09 中国石油大学(华东) A kind of leakage locating method based on speed difference
CN108194843B (en) * 2018-02-06 2019-07-30 长江大学 A method of it is leaked using sonic detection pipeline
CN109738156B (en) * 2019-01-22 2020-04-24 浙江大学 Dynamic collision test device capable of directionally simulating deep sea mesochite structure and seabed
CN109738155B (en) * 2019-01-22 2020-05-26 浙江大学 Test device for simulating dynamic collision between deep-sea mesochite structure and seabed
US11035749B2 (en) 2019-02-07 2021-06-15 Georg Fischer, LLC Leak test system and method for thermoplastic piping

Family Cites Families (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3838593A (en) * 1972-11-06 1974-10-01 Exxon Research Engineering Co Acoustic leak location and detection system
JPS58168934A (en) * 1982-03-31 1983-10-05 Hitachi Ltd Method and device for detecting leakage of liquid
US5038614A (en) * 1989-08-10 1991-08-13 Atlantic Richfield Company Acoustic vibration detection of fluid leakage from conduits
US5151882A (en) * 1990-08-08 1992-09-29 Atlantic Richfield Company Method for deconvolution of non-ideal frequency response of pipe structures to acoustic signals
US5974862A (en) * 1997-05-06 1999-11-02 Flow Metrix, Inc. Method for detecting leaks in pipelines
US6567006B1 (en) * 1999-11-19 2003-05-20 Flow Metrix, Inc. Monitoring vibrations in a pipeline network
US6453247B1 (en) * 2000-01-14 2002-09-17 National Research Council Of Canada PC multimedia-based leak detection system for water transmission and distribution pipes
US6614354B2 (en) * 2001-03-02 2003-09-02 Gas Research Institute In-ground pipeline monitoring
JP4314038B2 (en) * 2002-11-08 2009-08-12 エネジン株式会社 Method for estimating anomalous locations in fluid transport pipe networks
US6957157B2 (en) * 2002-11-12 2005-10-18 Flow Metrix, Inc. Tracking vibrations in a pipeline network
CA2416171A1 (en) * 2003-01-13 2004-07-13 Pure Technologies Ltd. Pipeline monitoring system
US6725705B1 (en) * 2003-05-15 2004-04-27 Gas Technology Institute Enhanced acoustic detection of gas leaks in underground gas pipelines
US7859943B2 (en) * 2005-01-07 2010-12-28 Westerngeco L.L.C. Processing a seismic monitor survey
US7760587B2 (en) * 2007-01-04 2010-07-20 Ocean Acoustical Services and Instrumentation Systems (OASIS), Inc. Methods of and systems for monitoring the acoustic transmission conditions in underwater areas using unmanned, mobile underwater vehicles
US7755970B2 (en) * 2007-06-22 2010-07-13 Westerngeco L.L.C. Methods for controlling marine seismic equipment orientation during acquisition of marine seismic data
US7607351B2 (en) * 2007-06-26 2009-10-27 General Electric Company Acoustic impact detection and monitoring system

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US9267648B2 (en) 2016-02-23
ITMI20091667A1 (en) 2011-03-30
DK2483656T3 (en) 2018-02-26
WO2011039589A8 (en) 2011-06-09
NO2483656T3 (en) 2018-04-14
WO2011039589A1 (en) 2011-04-07
AU2010302388B2 (en) 2014-11-13
US20120243376A1 (en) 2012-09-27
RS56897B1 (en) 2018-04-30
EP2483656A1 (en) 2012-08-08
EA201290159A1 (en) 2012-11-30
AU2010302388A1 (en) 2012-05-10
EP2483656B1 (en) 2017-11-15
HUE036162T2 (en) 2018-06-28
PL2483656T3 (en) 2018-04-30
BR112012007189A2 (en) 2016-03-29
BR112012007189B1 (en) 2021-05-25
TN2012000127A1 (en) 2013-09-19
IT1399026B1 (en) 2013-04-05
CA2775478A1 (en) 2011-04-07
HRP20180279T1 (en) 2018-04-06
EA024882B1 (en) 2016-10-31
WO2011039589A9 (en) 2011-07-28

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