WO1999019584A1 - Bi-directional switch for activating automotive liftgate lock mechanism - Google Patents

Bi-directional switch for activating automotive liftgate lock mechanism Download PDF

Info

Publication number
WO1999019584A1
WO1999019584A1 PCT/US1998/020286 US9820286W WO9919584A1 WO 1999019584 A1 WO1999019584 A1 WO 1999019584A1 US 9820286 W US9820286 W US 9820286W WO 9919584 A1 WO9919584 A1 WO 9919584A1
Authority
WO
WIPO (PCT)
Prior art keywords
lever
shaft
liftgate
functional apparatus
switch
Prior art date
Application number
PCT/US1998/020286
Other languages
French (fr)
Inventor
Steven S. Sauerbrey
Shuxian Huang
Gerald S. Mclean
Original Assignee
Ut Automotive Dearborn, Inc.
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Ut Automotive Dearborn, Inc. filed Critical Ut Automotive Dearborn, Inc.
Publication of WO1999019584A1 publication Critical patent/WO1999019584A1/en

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E05LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
    • E05BLOCKS; ACCESSORIES THEREFOR; HANDCUFFS
    • E05B81/00Power-actuated vehicle locks
    • E05B81/24Power-actuated vehicle locks characterised by constructional features of the actuator or the power transmission
    • E05B81/25Actuators mounted separately from the lock and controlling the lock functions through mechanical connections
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60SSERVICING, CLEANING, REPAIRING, SUPPORTING, LIFTING, OR MANOEUVRING OF VEHICLES, NOT OTHERWISE PROVIDED FOR
    • B60S1/00Cleaning of vehicles
    • B60S1/02Cleaning windscreens, windows or optical devices
    • B60S1/56Cleaning windscreens, windows or optical devices specially adapted for cleaning other parts or devices than front windows or windscreens
    • B60S1/58Cleaning windscreens, windows or optical devices specially adapted for cleaning other parts or devices than front windows or windscreens for rear windows
    • B60S1/583Cleaning windscreens, windows or optical devices specially adapted for cleaning other parts or devices than front windows or windscreens for rear windows including wiping devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60SSERVICING, CLEANING, REPAIRING, SUPPORTING, LIFTING, OR MANOEUVRING OF VEHICLES, NOT OTHERWISE PROVIDED FOR
    • B60S1/00Cleaning of vehicles
    • B60S1/02Cleaning windscreens, windows or optical devices
    • B60S1/04Wipers or the like, e.g. scrapers
    • B60S1/0491Additional elements being fixed on wipers or parts of wipers not otherwise provided for, e.g. covers, antennae or lights
    • EFIXED CONSTRUCTIONS
    • E05LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
    • E05BLOCKS; ACCESSORIES THEREFOR; HANDCUFFS
    • E05B83/00Vehicle locks specially adapted for particular types of wing or vehicle
    • E05B83/16Locks for luggage compartments, car boot lids or car bonnets
    • 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
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S292/00Closure fasteners
    • Y10S292/43Rear deck lid latches
    • 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
    • Y10T74/00Machine element or mechanism
    • Y10T74/18Mechanical movements
    • Y10T74/18856Oscillating to oscillating
    • Y10T74/18864Snap action
    • Y10T74/18872Plate spring

Definitions

  • This invention relates generally to a multi-purpose power transmission apparatus and specifically to a bi-directional bypass switch for use with an automotive vehicle intermittent motion mechanism that can be coupled to a windshield wiper arm, liftgate release/lock mechanism, or a window release lock mechanism. It is customary for automotive vehicles to have one or more windshield wiper assemblies. Conventional assemblies include rubber wiper blades mounted upon claw brackets that are pivotally attached to wiper arms mounted upon a rotating shaft. A variety of methods have been utilized to activate the rotating shafts including using an electric motor which actuates a series or parallel-coupled four-bar linkage mechanism.
  • Sport-utility vehicles and minivans often employ a window wiper assembly for cleaning the rear window.
  • these types of rear window wiper assemblies include a wiper blade mounted upon a bracket which is coupled to a wiper arm.
  • the wiper arm is attached to a wiper shaft rotatably driven in a cyclicle oscillating manner by a helical gear.
  • a reversible, fractional horsepower, directional current electric motor serves to actuate the helical gear through an armature shaft-mounted worm gear enmeshed therewith.
  • An example of this type of rear window wiper arrangement is disclosed in U.S. Patent No. 5,519,258 entitled "System and Method for Controlling Vehicle Liftgate Window Wiper".
  • a rear window release lock or latch that is actuated by a solenoid.
  • the latch can be unlocked to allow for upward pivotal movement of the rear window in relation to the otherwise stationary liftgate.
  • a separate liftgate lock can be mounted upon the liftgate door for fastening the liftgate to the body of the vehicle thereby preventing inadvertent opening of the liftgate.
  • This liftgate lock is traditionally operated by manual key or handle rotation, or more recently through a separate electric motor or solenoid. It is also well known to provide a separate electric motor to operate a pump for providing fluid under pressure to the rear window for cleaning the same.
  • a single electromagnetic device that selectively operates an intermittent motion mechanism coupled to a window wiper, a door lock, a window release lock, and the like.
  • An example of such improvements can be found in WO 96/33891 entitled “Multi-Functional Apparatus Employing an Intermittent Motion Mechanism”, WO 96/33892 entitled “Control System for an Automotive Vehicle Multi-Functional Apparatus”, and WO 96/33893 entitled “Multi- Functional Apparatus Employing an Electromagnetic Device".
  • These devices generally employ a geneva or starwheel-type mechanical construction for imparting rotational movement to an output pinion.
  • WO 96/33891 specifically discloses an electric motor driving a main gear having a plurality of output devices connected thereto. Each such output device can be selectively activated depending upon whether the driver desires to activate the windshield wipers, liftgate release/lock mechanism, rear window release lock mechanism, or the like. It is desirable to minimize the number of components in the multi-functional apparatus including minimizing the number of gears, minimize the spacial requirements, and the cost of the multi-functional apparatus. It is also desirable to improve the method of engaging an external lever, for example, a lever going to the liftgate release/lock mechanism, so that it has smoother operation while maintaining robustness in the system. It is further desirable to have a resetable primary rotary lever that minimizes components, operates off of the primary gear, operates smoothly, and is quiet. It is also desirable to provide a resetable bi-directional primary lever for imparting motion to an external arm leading to a liftgate lock, or the like, that minimizes stresses on the system and hence, extends the life of the system.
  • a single electromagnetic device can selectively operate an intermittent motion mechanism coupled to a window wiper, a door lock, a window release lock, and/or a fluid pump.
  • the intermittent motion mechanism being similar to a gear box having a mechanism for imparting motion to and through an improved spring-biased lever that is connected to an external device such as a door lock mechanism.
  • a bi-directional switch assembly for activating an automotive liftgate lock mechanism includes a drive member having an elongated shaft with a first end and a second end, the first end having an annular hub portion with a slot for receiving a spring and the second end having a flattened portion for receiving a rotatable member.
  • the switch is journaled to the drive member.
  • the switch is paddle-shaped wherein a tip has a pair of diverting arms extending therefrom with a semicircular base located at a distal end. An opening is located in the base for mating with the hub of the drive member.
  • a spring is disposed between the drive member and the switch to reset the switch to a free position once the liftgate lock mechanism is either locked or unlocked.
  • the multi-functional apparatus includes a housing encompassing a helical gear connected to the motor and a driven gear meshed with the helical gear.
  • An intermittent mechanism is coupled to the driven gear for operating a wiper arm.
  • a drive pin protruding from the driven gear selectively engages a second or third intermittent mechanism.
  • the second intermittent mechanism is coupled to a window lock mechanism and is activated by the drive pin engaging a lever which in turn is coupled to the window lock mechanism.
  • the third intermittent mechanism includes a spring biased switch rotatabiy coupled to an external lever coupled to a liftgate lock mechanism. The drive pin rotates the switch until the spring is overcome causing the external lever to rotate and engage the liftgate lock mechanism.
  • Figure 1 is a front elevational view of a tailgate of a vehicle from the perspective of a passenger sitting in the vehicle looking out, showing various components connected to a multi-functional apparatus which contains the present invention
  • Figure 2 is a partially fragmented, rear elevational view showing the bidirectional switch relative to the gear housing cover and electric motor;
  • Figure 3 is a partially exploded angled rear perspective view showing the bi-directional switch positioned within the housing;
  • Figure 4 is a perspective view of the bi-directional switch, spring clips and shaft assembled
  • Figure 5 is a perspective view of the exploded assembly of the present invention.
  • FIG. 6-12 illustrate the various positions of the switch and the liftgate lock control arm
  • Figure 6 is a fragmented rear elevational view showing the switch in a free position
  • Figure 7 is a fragmented rear elevational view showing the switch rotated so that the spring clip is under a load
  • Figure 8 is a fragmented rear elevational view showing the switch rotated to its maximum up position causing the control arm to be in an upper liftgate unlock position
  • Figure 9 is a fragmented rear elevational view showing the switch disengaged from the drive pin, the spring clip unbiased and returned to its centered position, and the control arm maintained in a liftgate unlock position;
  • Figure 10 is a fragmented rear elevational view showing the switch being rotated by the drive pin that is rotating clockwise and loading the spring clip
  • Figure 11 is a fragmented rear elevational view showing the switch in its down position and the control arm located in the liftgate lock position
  • Figure 12 is a fragmented rear elevational view showing the switch reset and disengaged from the drive pin, the spring clip relaxed while the control arm remains in the liftgate lock position.
  • an automotive vehicle such as a minivan, sport-utility vehicle, or the like
  • a rear liftgate door 10 which can pivot about a generally horizontal, hinging pivot axis 12.
  • a cargo space or passenger compartment is accessible from behind the vehicle.
  • Pivotally connected to the liftgate 10 is a pop-up window 14 and a pair of pneumatic cylinders 16 serve to push the window 14 toward the open position when a lower portion of the window 14 is released.
  • the preferred embodiment of the present invention includes a multi-functional apparatus that is secured to the inside surface of the liftgate 10 and is normally hidden by a trim panel that is shown broken away for illustrative purposes.
  • the multi-functional apparatus 18 is a transmission-like device consisting of a plurality of output drive members driven by an electric motor 20.
  • the multi- functional apparatus 18 has at least three outputs, each of which are driven by their own intermittent motion mechanism.
  • the first intermittent motion mechanism 22 provides rotational movement to output pinion 23 that drives a wiper arm 24 and a wiper blade 26 connected thereto.
  • the multi-functional apparatus 18 further includes a second intermittent motion mechanism 28 for selectively activating a window release lock mechanism 30.
  • a third intermittent motion mechanism 32 selectively activates a liftgate release lock mechanism 34 so that the operator can selectively open the liftgate 10.
  • the aforementioned multifunctional apparatus 18 includes a fractional horsepower, direct current electric motor 20, a helical main gear 35, a driven gear 36, the first intermittent motion mechanism 22, and the output pinion 23, the second intermittent motion mechanism 28, the third intermittent motion mechanism 32, a drive pin 38 connected to the driven gear 36, and a gear box housing 40.
  • the window wiper shaft 23 is selectively coupled to gear 36 by way of first intermittent motion mechanism 22 for rotating the rear window wiper blade arm 26 in an oscillating manner between a first position 42 and a second position 44 on the window 14.
  • Wiper shaft 23 and arm 24 are rotatable to a park position 46, removed from the window. When wiper blade 26 is in the park position 46, window 14 is free to open without interference of wiper 26.
  • the second intermittent motion mechanism 28 is operable to selectively activate the window release lock mechanism 30. This is accomplished by the drive pin 38 rotating to make contact with lever 48 that is journaled to shaft 50 which extends through a bore in the housing 40. Journaled to the other end of the shaft 50 is arm 52 (see Fig.1) which, when advanced, causes connecting rod 54 to pivotally rotate a latch in the window release lock mechanism 30 to release the window 14 so that it can pivot upward. It will be appreciated that the drive pin 38 can be advanced a predetermined amount in order to control the extent of rotation of lever 48. To release the window lock mechanism 30, the lever 48 only needs to be rotated partially. With reference to Figures 1-5, the liftgate release lock mechanism 34 is selectively coupled to the driven gear 36 by way of the third intermittent motion mechanism 32.
  • the third intermittent mechanism 32 includes a rotatable lever or switch 56 that is journaled to a distal end of a shaft 58, a pair of spring clips 60, and a control arm 62 journaled to the flattened end of shaft 58.
  • a connecting rod 64 imparts motion to the liftgate release lock mechanism 34.
  • a cylindrically-shaped hub 66 is located at the distal end of shaft 58 for providing a mounting area for lever 56 to be secure thereto. It is preferred that the hub 66 be integrally molded to the shaft 58, but it will be appreciated that a separate hub 66 could be secured to the distal end of shaft 58.
  • the shaft and hub are preferably made of plastic, but other materials could be used.
  • the gears and control arm are preferably made of plastic, and perhaps glass-filled.
  • the hub 66 is bifurcated 68 substantially therethrough in order to receive the spring clips 60.
  • An arcuate shaped protrusion 70 having a diameter smaller than the diameter of the hub 66 extends between the hub 66 and the shaft 58. This provides a shoulder that receives a bowl-shaped recess 72 formed within the switch 56. This allows the hub 66 and the switch 56 to nest and slidably rotate relative to one another.
  • the spring clips 60 are held in place by welding, soldering, or otherwise providing a bead of material 74 on the distal end of shaft 58 to fuse the spring clips 60 in place relative to the shaft 58 and hub 66. It will be appreciated that other means can be used to secure the clips 60 in place, including using adhesives.
  • the spring clips 60 are preferably made of metal, perhaps spring steel, and are symmetrically shaped to conform to the external profile of the switch 56.
  • the switch 56 is preferably made of a plastic material and has a circular mounting base 76 and a pair of arms 78 extending therefrom and converging to a distal tip 80.
  • the base has a recess 82 that receives hub 66.
  • An opening 84 in the mounting base 76 provides an access way for an inwardly extending portion 86 of the spring clips 60.
  • the opening 84 provides approximately 38 degrees of rotation of the switch 56 relative to shaft 58 prior to the spring 60 bottoming out on edge 88 of the opening 80.
  • Figures 6-12 depict the present invention in operation.
  • Figure 7 represents a possible second position of the third intermittent mechanism 32 where the drive pin 38 advances in a counter clockwise direction proportional to the speed of gear 36.
  • the switch rotates in a clockwise rotation to cause outer surface 90 to engage the inner surface 92 of spring 60.
  • exterior control arm 62 has not yet advanced to its downward position.
  • the arm 62 preferably will not move until switch 56 has rotated in a clockwise direction to the point where portion 94 of the spring clip 60 has engaged edge 88 of the switch.
  • Figure 8 illustrates a possible third position of the third intermittent mechanism 32 where the drive pin 38 has rotated the switch 56 to its uppermost position causing exterior arm 62 to rotate downward.
  • the spring 60 is at its maximum biasing position and edge 88 of the switch 56 is pressed against portion 94 of the spring clip 60 causing the shaft 58 to rotate clockwise proportional to exterior arm 62.
  • Figure 9 illustrates a possible fourth position of the third intermittent mechanism 32 wherein the drive pin 38 has cleared the switch 56 and the biasing force of the spring clip 60 propels the switch 56 automatically counter clockwise back to its reset position.
  • This re-setting feature allows the switch 56 to be properly oriented back to the free position as illustrated in Figure 9. In this position, the exterior arm 62 does not move, yet the liftgate lock mechanism 34 remains in the unlocked position.
  • Figure 10 illustrates a possible fifth position of the third intermittent mechanism 32 where depicted is the beginning of the process of unlocking the rear liftgate 10 by disengaging the lock mechanism 34.
  • the dive pin 38 engages the switch 56 as the gear 36 rotates in a clockwise direction.
  • the spring clip 60 begins to bias against the switch 56.
  • the spring 60 will deflect for approximately 19 degrees of rotation of the switch 56 which is approximately when the portion 94 of the spring clip 60 will bear against edge 88 of the switch 56. No external arm 62 movement has yet occurred.
  • spring 60 deflection is now complete and the motor 20 now begins to move the external linkage, i.e., arm 62 and rod 64.

Abstract

A bi-directional bypass switch (56) for activating an automotive liftgate lock mechanism (34, 64) includes a resetable spring-biased (60, 56) level that is coupled to an automotive liftgate locking mechanism (34, 64). The spring-biased (60, 56) level resets itself automatically upon completion of both the locking mode and unlocking mode by the liftgate lock mechanism (34, 64).

Description

BI-DIRECTIONAL SWITCH FOR ACTIVATING AUTOMOTIVE LIFTGATE LOCK MECHANISM
BACKGROUND OF THE INVENTION This invention relates generally to a multi-purpose power transmission apparatus and specifically to a bi-directional bypass switch for use with an automotive vehicle intermittent motion mechanism that can be coupled to a windshield wiper arm, liftgate release/lock mechanism, or a window release lock mechanism. It is customary for automotive vehicles to have one or more windshield wiper assemblies. Conventional assemblies include rubber wiper blades mounted upon claw brackets that are pivotally attached to wiper arms mounted upon a rotating shaft. A variety of methods have been utilized to activate the rotating shafts including using an electric motor which actuates a series or parallel-coupled four-bar linkage mechanism.
Sport-utility vehicles and minivans often employ a window wiper assembly for cleaning the rear window. Typically, these types of rear window wiper assemblies include a wiper blade mounted upon a bracket which is coupled to a wiper arm. The wiper arm is attached to a wiper shaft rotatably driven in a cyclicle oscillating manner by a helical gear. A reversible, fractional horsepower, directional current electric motor serves to actuate the helical gear through an armature shaft-mounted worm gear enmeshed therewith. An example of this type of rear window wiper arrangement is disclosed in U.S. Patent No. 5,519,258 entitled "System and Method for Controlling Vehicle Liftgate Window Wiper".
It is also well known in minivans, station wagons, and sport-utility vehicles to employ a rear window release lock or latch that is actuated by a solenoid. The latch can be unlocked to allow for upward pivotal movement of the rear window in relation to the otherwise stationary liftgate. A separate liftgate lock can be mounted upon the liftgate door for fastening the liftgate to the body of the vehicle thereby preventing inadvertent opening of the liftgate. This liftgate lock is traditionally operated by manual key or handle rotation, or more recently through a separate electric motor or solenoid. It is also well known to provide a separate electric motor to operate a pump for providing fluid under pressure to the rear window for cleaning the same.
Separate motors or solenoids are commonly required to actuate the aforementioned locks, the wiper, and fluid pump. However, having multiple motors has increased vehicle weight and cost while further proving difficult to package within the often small spaces provided. This because the window wiper mechanism, rear window lock and liftgate lock and windshield wiper pump, as well as their motors, are all incorporated within the pivoting liftgate.
To overcome the aforementioned problems, a single electromagnetic device has been provided that selectively operates an intermittent motion mechanism coupled to a window wiper, a door lock, a window release lock, and the like. An example of such improvements can be found in WO 96/33891 entitled "Multi-Functional Apparatus Employing an Intermittent Motion Mechanism", WO 96/33892 entitled "Control System for an Automotive Vehicle Multi-Functional Apparatus", and WO 96/33893 entitled "Multi- Functional Apparatus Employing an Electromagnetic Device". These devices generally employ a geneva or starwheel-type mechanical construction for imparting rotational movement to an output pinion. WO 96/33891 specifically discloses an electric motor driving a main gear having a plurality of output devices connected thereto. Each such output device can be selectively activated depending upon whether the driver desires to activate the windshield wipers, liftgate release/lock mechanism, rear window release lock mechanism, or the like. It is desirable to minimize the number of components in the multi-functional apparatus including minimizing the number of gears, minimize the spacial requirements, and the cost of the multi-functional apparatus. It is also desirable to improve the method of engaging an external lever, for example, a lever going to the liftgate release/lock mechanism, so that it has smoother operation while maintaining robustness in the system. It is further desirable to have a resetable primary rotary lever that minimizes components, operates off of the primary gear, operates smoothly, and is quiet. It is also desirable to provide a resetable bi-directional primary lever for imparting motion to an external arm leading to a liftgate lock, or the like, that minimizes stresses on the system and hence, extends the life of the system.
SUMMARY OF THE INVENTION
Accordingly, it is an object of the present invention to provide an improved system wherein a single electromagnetic device can selectively operate an intermittent motion mechanism coupled to a window wiper, a door lock, a window release lock, and/or a fluid pump. The intermittent motion mechanism being similar to a gear box having a mechanism for imparting motion to and through an improved spring-biased lever that is connected to an external device such as a door lock mechanism.
In one aspect of the present invention, a bi-directional switch assembly for activating an automotive liftgate lock mechanism includes a drive member having an elongated shaft with a first end and a second end, the first end having an annular hub portion with a slot for receiving a spring and the second end having a flattened portion for receiving a rotatable member. The switch is journaled to the drive member. The switch is paddle-shaped wherein a tip has a pair of diverting arms extending therefrom with a semicircular base located at a distal end. An opening is located in the base for mating with the hub of the drive member. A spring is disposed between the drive member and the switch to reset the switch to a free position once the liftgate lock mechanism is either locked or unlocked. Another aspect of the present invention includes a multi-functional apparatus driven by a motor. The multi-functional apparatus includes a housing encompassing a helical gear connected to the motor and a driven gear meshed with the helical gear. An intermittent mechanism is coupled to the driven gear for operating a wiper arm. A drive pin protruding from the driven gear selectively engages a second or third intermittent mechanism. The second intermittent mechanism is coupled to a window lock mechanism and is activated by the drive pin engaging a lever which in turn is coupled to the window lock mechanism. The third intermittent mechanism includes a spring biased switch rotatabiy coupled to an external lever coupled to a liftgate lock mechanism. The drive pin rotates the switch until the spring is overcome causing the external lever to rotate and engage the liftgate lock mechanism. When the drive pin rotates in the opposite direction, the switch is rotated to the point where the spring is overcome, thus causing the external arm to disengage the liftgate lock mechanism. In each instance, the switch resets to a free position once it clears the drive pin. Additional advantages and features of the present invention will become apparent from the following description and appended claims, taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a front elevational view of a tailgate of a vehicle from the perspective of a passenger sitting in the vehicle looking out, showing various components connected to a multi-functional apparatus which contains the present invention;
Figure 2 is a partially fragmented, rear elevational view showing the bidirectional switch relative to the gear housing cover and electric motor; Figure 3 is a partially exploded angled rear perspective view showing the bi-directional switch positioned within the housing;
Figure 4 is a perspective view of the bi-directional switch, spring clips and shaft assembled;
Figure 5 is a perspective view of the exploded assembly of the present invention;
Figures 6-12 illustrate the various positions of the switch and the liftgate lock control arm;
Figure 6 is a fragmented rear elevational view showing the switch in a free position; Figure 7 is a fragmented rear elevational view showing the switch rotated so that the spring clip is under a load; Figure 8 is a fragmented rear elevational view showing the switch rotated to its maximum up position causing the control arm to be in an upper liftgate unlock position;
Figure 9 is a fragmented rear elevational view showing the switch disengaged from the drive pin, the spring clip unbiased and returned to its centered position, and the control arm maintained in a liftgate unlock position;
Figure 10 is a fragmented rear elevational view showing the switch being rotated by the drive pin that is rotating clockwise and loading the spring clip; Figure 11 is a fragmented rear elevational view showing the switch in its down position and the control arm located in the liftgate lock position; and
Figure 12 is a fragmented rear elevational view showing the switch reset and disengaged from the drive pin, the spring clip relaxed while the control arm remains in the liftgate lock position.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
With reference to Figure 1 , an automotive vehicle, such as a minivan, sport-utility vehicle, or the like, is illustrated having a rear liftgate door 10 which can pivot about a generally horizontal, hinging pivot axis 12. When the liftgate is pivoted to an open position a cargo space or passenger compartment is accessible from behind the vehicle. Pivotally connected to the liftgate 10 is a pop-up window 14 and a pair of pneumatic cylinders 16 serve to push the window 14 toward the open position when a lower portion of the window 14 is released.
With reference to Figures 1 and 2, the preferred embodiment of the present invention includes a multi-functional apparatus that is secured to the inside surface of the liftgate 10 and is normally hidden by a trim panel that is shown broken away for illustrative purposes. The multi-functional apparatus 18 is a transmission-like device consisting of a plurality of output drive members driven by an electric motor 20. In the present invention, the multi- functional apparatus 18 has at least three outputs, each of which are driven by their own intermittent motion mechanism. The first intermittent motion mechanism 22 provides rotational movement to output pinion 23 that drives a wiper arm 24 and a wiper blade 26 connected thereto. The multi-functional apparatus 18 further includes a second intermittent motion mechanism 28 for selectively activating a window release lock mechanism 30. A third intermittent motion mechanism 32 selectively activates a liftgate release lock mechanism 34 so that the operator can selectively open the liftgate 10.
With continued reference to Figures 1 and 2, the aforementioned multifunctional apparatus 18 includes a fractional horsepower, direct current electric motor 20, a helical main gear 35, a driven gear 36, the first intermittent motion mechanism 22, and the output pinion 23, the second intermittent motion mechanism 28, the third intermittent motion mechanism 32, a drive pin 38 connected to the driven gear 36, and a gear box housing 40.
The window wiper shaft 23 is selectively coupled to gear 36 by way of first intermittent motion mechanism 22 for rotating the rear window wiper blade arm 26 in an oscillating manner between a first position 42 and a second position 44 on the window 14. Wiper shaft 23 and arm 24 are rotatable to a park position 46, removed from the window. When wiper blade 26 is in the park position 46, window 14 is free to open without interference of wiper 26.
The second intermittent motion mechanism 28 is operable to selectively activate the window release lock mechanism 30. This is accomplished by the drive pin 38 rotating to make contact with lever 48 that is journaled to shaft 50 which extends through a bore in the housing 40. Journaled to the other end of the shaft 50 is arm 52 (see Fig.1) which, when advanced, causes connecting rod 54 to pivotally rotate a latch in the window release lock mechanism 30 to release the window 14 so that it can pivot upward. It will be appreciated that the drive pin 38 can be advanced a predetermined amount in order to control the extent of rotation of lever 48. To release the window lock mechanism 30, the lever 48 only needs to be rotated partially. With reference to Figures 1-5, the liftgate release lock mechanism 34 is selectively coupled to the driven gear 36 by way of the third intermittent motion mechanism 32. The third intermittent mechanism 32 includes a rotatable lever or switch 56 that is journaled to a distal end of a shaft 58, a pair of spring clips 60, and a control arm 62 journaled to the flattened end of shaft 58. A connecting rod 64 imparts motion to the liftgate release lock mechanism 34. With reference to Figure 5, a cylindrically-shaped hub 66 is located at the distal end of shaft 58 for providing a mounting area for lever 56 to be secure thereto. It is preferred that the hub 66 be integrally molded to the shaft 58, but it will be appreciated that a separate hub 66 could be secured to the distal end of shaft 58. The shaft and hub are preferably made of plastic, but other materials could be used. Moreover, the gears and control arm are preferably made of plastic, and perhaps glass-filled. The hub 66 is bifurcated 68 substantially therethrough in order to receive the spring clips 60. An arcuate shaped protrusion 70 having a diameter smaller than the diameter of the hub 66 extends between the hub 66 and the shaft 58. This provides a shoulder that receives a bowl-shaped recess 72 formed within the switch 56. This allows the hub 66 and the switch 56 to nest and slidably rotate relative to one another. The spring clips 60 are held in place by welding, soldering, or otherwise providing a bead of material 74 on the distal end of shaft 58 to fuse the spring clips 60 in place relative to the shaft 58 and hub 66. It will be appreciated that other means can be used to secure the clips 60 in place, including using adhesives.
The spring clips 60 are preferably made of metal, perhaps spring steel, and are symmetrically shaped to conform to the external profile of the switch 56. The switch 56 is preferably made of a plastic material and has a circular mounting base 76 and a pair of arms 78 extending therefrom and converging to a distal tip 80. The base has a recess 82 that receives hub 66. An opening 84 in the mounting base 76 provides an access way for an inwardly extending portion 86 of the spring clips 60. The opening 84 provides approximately 38 degrees of rotation of the switch 56 relative to shaft 58 prior to the spring 60 bottoming out on edge 88 of the opening 80. Figures 6-12 depict the present invention in operation. In Figure 6, the gear 36 is rotating in a counter clockwise direction thus causing drive pin 38 to make contact with the outer periphery or surface 90 of lever 56. This position represents the lever 56 in a free position where the spring clips 60 are not yet flexed and the control arm 62 is stationary.
Figure 7 represents a possible second position of the third intermittent mechanism 32 where the drive pin 38 advances in a counter clockwise direction proportional to the speed of gear 36. As the pin 38 rides along the surface 90 of the switch 56, the switch rotates in a clockwise rotation to cause outer surface 90 to engage the inner surface 92 of spring 60. At this position, exterior control arm 62 has not yet advanced to its downward position. The arm 62 preferably will not move until switch 56 has rotated in a clockwise direction to the point where portion 94 of the spring clip 60 has engaged edge 88 of the switch. Figure 8 illustrates a possible third position of the third intermittent mechanism 32 where the drive pin 38 has rotated the switch 56 to its uppermost position causing exterior arm 62 to rotate downward. At this position, the spring 60 is at its maximum biasing position and edge 88 of the switch 56 is pressed against portion 94 of the spring clip 60 causing the shaft 58 to rotate clockwise proportional to exterior arm 62.
Figure 9 illustrates a possible fourth position of the third intermittent mechanism 32 wherein the drive pin 38 has cleared the switch 56 and the biasing force of the spring clip 60 propels the switch 56 automatically counter clockwise back to its reset position. This re-setting feature allows the switch 56 to be properly oriented back to the free position as illustrated in Figure 9. In this position, the exterior arm 62 does not move, yet the liftgate lock mechanism 34 remains in the unlocked position.
Figure 10 illustrates a possible fifth position of the third intermittent mechanism 32 where depicted is the beginning of the process of unlocking the rear liftgate 10 by disengaging the lock mechanism 34. In this instance, the dive pin 38 engages the switch 56 as the gear 36 rotates in a clockwise direction. As the switch 56 rotates in a counter clockwise direction, the spring clip 60 begins to bias against the switch 56. The spring 60 will deflect for approximately 19 degrees of rotation of the switch 56 which is approximately when the portion 94 of the spring clip 60 will bear against edge 88 of the switch 56. No external arm 62 movement has yet occurred. As illustrated in Figure 11 , spring 60 deflection is now complete and the motor 20 now begins to move the external linkage, i.e., arm 62 and rod 64. Such continues until the drive pin 38 moves away from the switch 56 and the switch resets. More specifically, at the point where the spring is at its maximum deflection (see Fig. 11), the switch 56 now rotates approximately 52 degrees because the drive pin 38 continues along its clockwise path pushing switch 56 to its downward position. This action causes exterior arm 62 to begin to rotate upward to its highest position which causes the connecting rod 64 to shift upward and engage the liftgate lock mechanism 34 into its locked position. The spring is at its maximum biased position and remains loaded until the drive pin 38 clears the switch 56 as illustrated in Figure 12. The switch 56 automatically advances to its reset position because of the biasing forces exerting by the spring clips 60. The exterior arm 62 will remain in its upward position until the process is repeated. For example, to unlock the liftgate, the steps as described and depicted in Figures 6-9 will be used. To re-lock the liftgate, the steps and procedures described in connection with Figures 10-12 should be employed. It will be appreciated that based upon the type of liftgate locking mechanism 34 used, the steps for locking and unlocking said mechanism can be reversed, that is exterior arm 62 could be pushed downward to lock, and pushed upward to unlock the liftgate 10.
Various materials have been disclosed in an exemplary fashion, however, other materials may of course be employed. It is intended by the following claims to cover these and any other departures from the disclosed embodiments which fall within the true spirit of this invention.

Claims

The invention claimed is:
1. A multi-functional apparatus for an automotive vehicle, said apparatus comprising: an electric motor; a housing connected to said motor; a first gear connected to said motor and extending into said housing; a driven gear meshed with said first gear, said driven gear located within said housing; a driving surface protruding from said driven gear; a first intermittent motion mechanism selectively driven by one of said gears for selectively operating a first device; a second intermittent motion mechanism selectively driven by one of said gears for selectively operating a second device; and at least a section of a biasing member externally mounted to at least one of said mechanisms for biasing said mechanism from a first orientation to a second orientation.
2. The multi-functional apparatus as claimed in Claim 1 , wherein at least one of said intermittent motion mechanisms includes an elongated lever connecting to a drive member, a lock mechanism coupled to said lever, and a spring being operable to reset said lever at a predetermined position after said lever is moved therefrom.
3. The multi-functional apparatus as claimed in Claim 2, further comprising a substantially circular hub rotatably coupled to said lever, said driving surface of said driven gear operably contacting against an edge of said lever, and a pivot pin coupling said hub to said housing.
4. The multi-functional apparatus as claimed in Claim 1 , wherein said first intermittent motion mechanism includes: an elongated shaft; a switch rotatably journaled to one end of said shaft; said one end of said shaft including a hub, a contoured second end of said shaft extending through said housing; and an arm connected to said contoured end of said shaft.
5. The multi-functional apparatus as claimed in Claim 1 , further comprising a third intermittent motion mechanism including a lever connecting to a shaft that is rotatable relative to said housing, a biasing member operably returning said lever to a predetermined position, and means for securing said biasing member relative to said lever.
6. The multi-functional apparatus as claimed in Claim 1 , wherein said biasing member has a substantially W-shape for biasing said first intermittent motion mechanism toward a desired orientation.
7. The multi-functional apparatus as claimed in Claim 1 , wherein said first device is a wiper assembly.
8. The multi-functional apparatus as claimed in Claim 1 wherein said second device is a window release mechanism.
9. The multi-functional apparatus as claimed in Claim 1 , wherein one of said devices is a lock.
10. A bi-directional apparatus for use in an automotive vehicle, said apparatus comprising: a drive member having an elongated shaft with a first end and a second end, said first end having an annular portion, said annular portion having a slot and a frustrum shaped portion, said second end having a flat portion for receiving another member; a rotatable member journaled to said drive member, said rotatable member having a tip, a pair of diverging arms of said rotatable member extending from said tip, said arms forming a semi-circular base at a distal end, said base having an opening to provide rotational movement; and a biasing member connected to said drive member for resetting said rotatable member to a desirable position.
11. The bi-directional apparatus as claimed in Claim 10, further comprising a retaining member for securing said biasing member to said drive member.
12. The bi-directional apparatus as claimed in Claim 11 , wherein said biasing member has a substantially W-shape.
PCT/US1998/020286 1997-10-09 1998-09-28 Bi-directional switch for activating automotive liftgate lock mechanism WO1999019584A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US08/947,791 1997-10-09
US08/947,791 US5986351A (en) 1997-10-09 1997-10-09 Bi-directional lever for activating automotive liftgate lock mechanism

Publications (1)

Publication Number Publication Date
WO1999019584A1 true WO1999019584A1 (en) 1999-04-22

Family

ID=25486780

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1998/020286 WO1999019584A1 (en) 1997-10-09 1998-09-28 Bi-directional switch for activating automotive liftgate lock mechanism

Country Status (2)

Country Link
US (1) US5986351A (en)
WO (1) WO1999019584A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008065080A1 (en) * 2006-11-30 2008-06-05 Valeo Systemes D'essuyage Arrangement of a switch on an opening panel of a motor vehicle

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6192725B1 (en) * 1999-11-30 2001-02-27 Daimlerchrysler Corporation Liftgate handle and latch assembly
DE20214130U1 (en) * 2002-09-12 2004-02-12 Robert Bosch Gmbh Device for receiving a closing element on a wiper drive
JP5614162B2 (en) * 2010-08-12 2014-10-29 富士ゼロックス株式会社 Information processing apparatus and information processing program
US9428152B2 (en) * 2014-09-05 2016-08-30 Taylor Made Group, Llc Upgradeable windshield assembly
GB2536721A (en) * 2015-03-27 2016-09-28 Johnson Electric Sa Integrated door lock sub-assembly
WO2016154915A1 (en) * 2015-03-31 2016-10-06 Abb技术有限公司 Rotary limiting device

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2048362A (en) * 1979-03-28 1980-12-10 Bosch Gmbh Robert Mechanism for converting rotary into reciprocating motion
EP0478013A2 (en) * 1986-10-06 1992-04-01 Aisin Seiki Kabushiki Kaisha Door lock assembly for automotive vehicles
DE4219211A1 (en) * 1992-06-12 1993-12-16 Swf Auto Electric Gmbh Actuator
US5519258A (en) 1993-11-22 1996-05-21 Ford Motor Company System and method for controlling vehicle lift gate window wiper
WO1996033891A1 (en) 1995-04-28 1996-10-31 United Technologies Motor Systems, Inc. Multi-functional apparatus employing an intermittent motion mechanism
WO1996033893A1 (en) 1995-04-28 1996-10-31 United Technologies Automotive, Inc. Multi-functional apparatus employing an electromagnetic device
WO1996033892A1 (en) 1995-04-28 1996-10-31 United Technologies Automotive, Inc. Control system for an automotive vehicle multi-functional apparatus

Family Cites Families (92)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2271207A (en) * 1938-08-29 1942-01-27 Telefunken Gmbh Remote control arrangement
US2345778A (en) * 1939-09-13 1944-04-04 Johannes Antonius Van Lammeren Remote motor control
DE822178C (en) * 1950-03-15 1951-11-22 Max Goller Claw clutch for gear-regulated rollers, e.g. on paper or text machines
US2615945A (en) * 1950-09-20 1952-10-28 Dynamatic Corp Field control of electromagnetic couplings
US2722617A (en) * 1951-11-28 1955-11-01 Hartford Nat Bank & Trust Comp Magnetic circuits and devices
US2659237A (en) * 1952-07-22 1953-11-17 Harris Seybold Co Reversing drive mechanism
US2953802A (en) * 1958-01-10 1960-09-27 Gen Motors Corp Windshield cleaning system
US2959803A (en) * 1958-01-10 1960-11-15 Gen Motors Corp Windshield cleaning system
US3163791A (en) * 1960-04-04 1964-12-29 Admiral Corp Motor system
FR1281424A (en) * 1960-12-01 1962-01-12 Windscreen washer system for motor vehicles
DE1206365B (en) * 1963-02-13 1965-12-02 Siteg Siebtech Gmbh Vibrating centrifuge drive
US3361005A (en) * 1965-12-15 1968-01-02 Gen Motors Corp Headlamp actuator
US3443455A (en) * 1967-05-03 1969-05-13 Martin J Zugel Intermittent motion device
US3421380A (en) * 1967-06-07 1969-01-14 Unitek Corp Intermittent motion apparatus
US3443442A (en) * 1967-06-21 1969-05-13 Ibm Selectively operable intermittent motion apparatus
US3442146A (en) * 1967-07-07 1969-05-06 Theodore Simpson Intermittent rotary motion
GB1186241A (en) * 1967-10-26 1970-04-02 Gen Motors Ltd Windscreen Wiper and Washer Mechanisms.
US3523204A (en) * 1968-01-19 1970-08-04 Sydney Rand Magnetic transmission system
US3574882A (en) * 1969-07-30 1971-04-13 Gen Motors Corp Windshield washer pump assembly
US3659128A (en) * 1969-11-17 1972-04-25 Autotrol Corp Icemaker drive with overload release
US3619676A (en) * 1970-03-24 1971-11-09 Yaskawa Denki Seisakusho Kk Duplex servomotor
US3665772A (en) * 1970-09-11 1972-05-30 Ford Motor Co Windshield wiper motor link depressed park mechanism
GB1345372A (en) * 1970-12-30 1974-01-30 Rau Swf Autozubehoer Windscreen wiper for vehicles more especially automotiv vehicles
US3688332A (en) * 1971-04-07 1972-09-05 Gen Motors Corp Mechanism for opening and closing a cover for a concealed windshield wiper system
US3689817A (en) * 1971-08-09 1972-09-05 Gen Motors Corp Windshield wiper system
US3917330A (en) * 1972-05-25 1975-11-04 Lectron Products Electric lock release
US3803627A (en) * 1972-07-24 1974-04-09 O Schuscheng Motor-driven, telescoping antenna for automobiles
AU457092B2 (en) * 1972-12-21 1975-01-16 Shigehiro Yamanaka Remote control apparatus for opening and closing vehicle door
JPS49108469A (en) * 1973-02-19 1974-10-15
US4009952A (en) * 1975-01-09 1977-03-01 Bell & Howell Company Intermittent rotary motion device
US4065234A (en) * 1975-12-22 1977-12-27 Nihon Kagaku Kizai Kabushiki Kaisha Magnetically driven rotary pumps
GB1543101A (en) * 1977-01-31 1979-03-28 Chrysler Uk Vehicle bodies
CA1099001A (en) * 1977-04-29 1981-04-07 Chrysler Corporation Electronic circuit controller for windshield wiper drive motor
DE2803264A1 (en) * 1978-01-26 1979-08-02 Bosch Gmbh Robert WIPER DEVICE FOR VEHICLES
DE2816207A1 (en) * 1978-04-14 1979-10-25 Rau Swf Autozubehoer Wiper for retractable headlamp - with retraction drive provided by wiper motor using selective clutch
US4352299A (en) * 1978-10-16 1982-10-05 The Bendix Corporation Intermittent motion gear apparatus
US4173055A (en) * 1978-11-13 1979-11-06 Auto Components, Inc. Windshield washer pump drive mechanism
DE2851727A1 (en) * 1978-11-30 1980-06-26 Rau Swf Autozubehoer SWITCHING ARRANGEMENT FOR AN ELECTRICAL DRIVE MOTOR REVERSIBLE FROM A VOLTAGE SOURCE
DE2851770A1 (en) * 1978-11-30 1980-07-03 Rau Swf Autozubehoer SWITCHING ARRANGEMENT FOR AN ELECTRICAL DRIVE MOTOR REVERSIBLE FROM A VOLTAGE SOURCE
DE2917324A1 (en) * 1979-04-28 1980-11-06 Rau Swf Autozubehoer SWITCHING ARRANGEMENT FOR AN ELECTRICAL DRIVE MOTOR REVERSIBLE FROM A VOLTAGE SOURCE
JPS5622150A (en) * 1979-07-31 1981-03-02 Fujitsu Ltd Logic information collecting system
DE3027810C2 (en) * 1980-07-23 1988-07-28 Gretsch-Unitas Gmbh Baubeschlagfabrik, 7257 Ditzingen Gear for a window or a door
DE3111633A1 (en) * 1981-03-25 1982-11-18 SWF-Spezialfabrik für Autozubehör Gustav Rau GmbH, 7120 Bietigheim-Bissingen ACTUATOR, IN PARTICULAR COMBINED WINDOW LIFTING AND CENTRAL DOOR LOCKING SYSTEM IN MOTOR VEHICLES
DE3116737A1 (en) * 1981-04-28 1982-11-11 SWF-Spezialfabrik für Autozubehör Gustav Rau GmbH, 7120 Bietigheim-Bissingen SWITCHING ARRANGEMENT FOR AN ELECTRIC MOTOR REPLACED BY A VOLTAGE SOURCE FOR DRIVING A COMBINED WINDOW LIFTING AND DOOR LOCKING SYSTEM IN VEHICLES.
US4422522A (en) * 1982-01-21 1983-12-27 Lectron Products, Inc. Inertial lock for vehicle door latch
JPS58224838A (en) * 1982-06-21 1983-12-27 Nissan Motor Co Ltd Wiper device for head lamp capable of being housed in car body
US4660698A (en) * 1983-04-25 1987-04-28 Tok Bearing Company, Inc. One way clutch
US4492904A (en) * 1983-09-01 1985-01-08 General Motors Corporation Windshield wiper system with touch control
US4553656A (en) * 1983-10-27 1985-11-19 Amerock Corporation Power actuated operator for windows and the like
JPS60113856A (en) * 1983-11-26 1985-06-20 Nippon Denso Co Ltd Power transmission gear
DE3403246A1 (en) * 1984-01-27 1985-08-01 Gebr. Isringhausen, 4920 Lemgo ELECTRICALLY ADJUSTABLE VEHICLE SEAT
DE3409680A1 (en) * 1984-03-16 1985-09-19 SWF Auto-Electric GmbH, 7120 Bietigheim-Bissingen ELECTRIC MOTOR, ESPECIALLY WIPER MOTOR FOR MOTOR VEHICLES
CN1008297B (en) * 1985-04-29 1990-06-06 浙江省瑞安永久机电研究所 Multifunctional electromagnetic valves
FR2583595B1 (en) * 1985-06-18 1987-09-11 Marchal Equip Auto CONTROL DEVICE FOR A DIRECT CURRENT ELECTRIC MOTOR FOR WINDSCREEN WIPERS.
JPS6273977A (en) * 1985-09-28 1987-04-04 Alps Electric Co Ltd Thermal transfer printer
US4630178A (en) * 1985-12-13 1986-12-16 Chrysler Motors Corporation Articulated coupling assembly for vehicle headlamp doors
US4674781A (en) * 1985-12-16 1987-06-23 United Technologies Electro Systems, Inc. Electric door lock actuator
US4702117A (en) * 1986-03-31 1987-10-27 Kokusan Kinzoku Kogyo Kabushiki Kaisha Lock actuator for a pair of locks
JPS6344870U (en) * 1986-09-11 1988-03-25
DE3643414A1 (en) * 1986-12-19 1988-06-30 Swf Auto Electric Gmbh WIPING SYSTEM FOR VEHICLES
JPH056215Y2 (en) * 1987-06-12 1993-02-17
JPS6489703A (en) * 1987-09-30 1989-04-04 Harada Ind Co Ltd Driving control device for motor driven expansion antenna
DE3734392C2 (en) * 1987-10-10 1998-07-23 Bosch Gmbh Robert Drive device for windshield wipers of motor vehicles
DE3807087A1 (en) * 1988-03-04 1989-09-14 Audi Ag Closing device for the rear flap of a motor vehicle
FR2629030B1 (en) * 1988-03-22 1991-08-23 Valeo Systemes Dessuyage WIPER BLADE HOLDER HAVING A LOCK
JPH01174633U (en) * 1988-05-31 1989-12-12
DE3838285C2 (en) * 1988-11-11 1996-09-12 Teves Gmbh Alfred Electric motor, in particular small electric motor for driving windshield wiper systems in motor vehicles
JPH02145552U (en) * 1989-05-16 1990-12-11
DE3920731C2 (en) * 1989-06-24 1999-09-02 Teves Gmbh Alfred Drive device, in particular for a windshield wiper system on a motor vehicle
DE3923688A1 (en) * 1989-07-18 1991-01-24 Swf Auto Electric Gmbh Lock for motor vehicle door - is actuated by crankshaft which rotates in one direction only
US5045741A (en) * 1990-02-23 1991-09-03 Battelle Memorial Institute Dual-motion apparatus
FR2662403B1 (en) * 1990-05-25 1993-12-10 Valeo Electronique ACTUATOR, IN PARTICULAR FOR THE ORIENTATION CONTROL OF A MOTOR VEHICLE PROJECTOR.
DE4018713C2 (en) * 1990-06-12 1999-06-10 Bosch Gmbh Robert Windshield wiper
JPH083048Y2 (en) * 1991-03-08 1996-01-29 株式会社三ツ葉電機製作所 Electric antenna device
JPH0814216B2 (en) * 1991-03-29 1996-02-14 株式会社大井製作所 Automotive back door closure device
JPH04128069U (en) * 1991-05-14 1992-11-20 自動車電機工業株式会社 wiper motor
JPH0586761A (en) * 1991-09-30 1993-04-06 Harada Ind Co Ltd Actuator for door lock device
US5355061A (en) * 1992-01-24 1994-10-11 Grimes Aerospace Company Windshield wiper system
DE4313363A1 (en) * 1992-04-28 1993-11-04 Asmo Co Ltd DC motor drive control circuit for vehicle windscreen wiper - selectively connects pair of motor connecting elements to electrical energy source and uses two relays for motor control
KR950007731B1 (en) * 1992-05-28 1995-07-14 아시아자동차공업주식회사 Automatic opening and shutting device for door
JP2575572Y2 (en) * 1992-08-27 1998-07-02 株式会社ミツバ Wiper device
JPH0687361A (en) * 1992-09-04 1994-03-29 Mitsuba Electric Mfg Co Ltd Power seat driving device for vehicle
FR2698060B1 (en) * 1992-11-18 1995-01-06 Valeo Systemes Dessuyage Wiper device for wiping a window carried by an opening panel of a motor vehicle.
US5315735A (en) * 1992-12-15 1994-05-31 Shin Chiu I Opposed roller-type motor vehicle windshield wiper
US5274875A (en) * 1993-01-25 1994-01-04 Chou Liao Ter Displaceable rear windshield wiper incorporating trunk lid interaction and a rear brake light
JPH0732919A (en) * 1993-07-20 1995-02-03 Mitsuba Electric Mfg Co Ltd Driving device of power seat for vehicle
US5373605A (en) * 1993-08-10 1994-12-20 Austin; Lee Lateral travel windshield wiper with speed multiplication
JPH0761266A (en) * 1993-08-24 1995-03-07 Mitsuba Electric Mfg Co Ltd Multiple drive unit for vehicular power seat
US5355286A (en) * 1993-11-09 1994-10-11 General Motors Corporation Retractable headlamp assembly
FR2715011B1 (en) * 1994-01-13 1996-03-29 Schlumberger Ind Sa System for driving in rotation of two mechanical members by magnetic coupling and fluid meter comprising such a system.
US5730028A (en) * 1996-07-22 1998-03-24 United Technologies Automotive, Inc. Linkage for a power liftgate lock system
US5844382A (en) * 1997-04-09 1998-12-01 Ut Automotive Dearborn, Inc Motion transmitting apparatus for use with an automotive vehicle multi-functional apparatus

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2048362A (en) * 1979-03-28 1980-12-10 Bosch Gmbh Robert Mechanism for converting rotary into reciprocating motion
EP0478013A2 (en) * 1986-10-06 1992-04-01 Aisin Seiki Kabushiki Kaisha Door lock assembly for automotive vehicles
DE4219211A1 (en) * 1992-06-12 1993-12-16 Swf Auto Electric Gmbh Actuator
US5519258A (en) 1993-11-22 1996-05-21 Ford Motor Company System and method for controlling vehicle lift gate window wiper
WO1996033891A1 (en) 1995-04-28 1996-10-31 United Technologies Motor Systems, Inc. Multi-functional apparatus employing an intermittent motion mechanism
WO1996033893A1 (en) 1995-04-28 1996-10-31 United Technologies Automotive, Inc. Multi-functional apparatus employing an electromagnetic device
WO1996033892A1 (en) 1995-04-28 1996-10-31 United Technologies Automotive, Inc. Control system for an automotive vehicle multi-functional apparatus

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008065080A1 (en) * 2006-11-30 2008-06-05 Valeo Systemes D'essuyage Arrangement of a switch on an opening panel of a motor vehicle
FR2909349A1 (en) * 2006-11-30 2008-06-06 Valeo Systemes Dessuyage ARRANGEMENT OF A SWITCH ON AN OPENING OF A MOTOR VEHICLE

Also Published As

Publication number Publication date
US5986351A (en) 1999-11-16

Similar Documents

Publication Publication Date Title
EP0824427B1 (en) Multi-functional apparatus employing an electromagnetic device
US5907885A (en) Multi-functional apparatus for use in an automotive vehicle employing multiple tracks
US5841249A (en) Multi-functional apparatus employing an intermittent motion mechanism
US5844382A (en) Motion transmitting apparatus for use with an automotive vehicle multi-functional apparatus
US6026536A (en) Range limiting dual direction slip clutch
US5977678A (en) Magnetic coupling mechanism for use in an automotive vehicle
US5852943A (en) Door lock mechanism for an automotive vehicle
US5979256A (en) Gear drive window wiper and multi-function electric motor
US5924324A (en) Movable gear drive windshield wiper
US5949206A (en) Multi-functional apparatus employing an intermittent motion mechanism
US6205612B1 (en) Window wiper system for an automotive vehicle
US5986351A (en) Bi-directional lever for activating automotive liftgate lock mechanism
US5847519A (en) Multi-functional apparatus for a wiper and cable drive
US5920159A (en) Multi-functional apparatus employing a flexible drive element for selectively actuating multiple output systems
US5916327A (en) Multi-functional apparatus employing an electromagnetic device
US5953786A (en) Bypass loop wiper/washer system
US5979255A (en) Intermittent rotary motion mechanism for use in an automotive vehicle
EP1167137B1 (en) Window wiper arm drive and window lock system

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): CA JP

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): AT BE CH CY DE DK ES FI FR GB GR IE IT LU MC NL PT SE

121 Ep: the epo has been informed by wipo that ep was designated in this application
NENP Non-entry into the national phase

Ref country code: CA

122 Ep: pct application non-entry in european phase