Emotiv Test Bench Manual Transmission

Rapidshare - page 3. Christopher Hart fast download Christopher Hart rapidshare megaupload, Christopher Hart via torrent download, rar Zip password mediafire Christopher Hart download.

HomeApplied Mechanics and MaterialsMechatronics and Computational MechanicsDesign of Test Bench for Transmission Efficiency...

Abstract:

Transmission efficiency of the actuator is an important aspect affecting the performance of AMT. We design a test bench for transmission efficiency of AMT actuator, witch can be adapted to a wide variety of mechanism. We can get a conclusion that this developed test bench can meet the needs of studying transmission efficiency of AMT actuator and other worm gear transmission.

Engine Test Bench

J. J. Hao et al., 'Design of Test Bench for Transmission Efficiency of AMT Actuator', Applied Mechanics and Materials, Vol. 307, pp. 79-83, 2013

[1] Xue-xun Guo: The structure and principle of Vehicle automatic transmission, Mechanical Industry Press, (2003).

[2] Ching-Huan Tseng, Ming-Feng Hsieh: SAE World Congress Detroit, Michigan Vol. 11-14 (2005).

[3] Yi-gang Zhang and Li-yan Qiao: Development environment of Software of virtual instrument (LabWindows/CVI6. 0), Mechanical Industry Press, (2002).

[4] Zheng Zhang, Jie-min Yang: Automation and instrument, Vol. 149-151 (2010).

[5] D J, JOSEPH E, ZHAN P CH: Fast surface approximation for volume and surface area measurements using distance transform, Optical Engineering, Vol. 42(2003), p.2947.

DOI: https://doi.org/10.1117/1.1605737

[6] Hiroshi Takahashi, Kouichi Kuroda: A Studp on Automated Shifting and Shift Timing Using a Driver's Mental Model, IEEE Intelligent Vehicles Symposium, (1996).

Abstract: This paper presents the design and prototype of an electromechanical actuator with some constraints that allow creating a feasible prototype with reasonably accuracy. Also, was consider the variation of friction forces due to changes in load conditions to obtain the mathematical relation between the maximum load, the required motor torque and the maximum angular acceleration of the payload; important parameters that contribute to determine the suitable motor.
4951
Abstract: In order to accelerate the velocity and improve the accuracy of the pseudo-dynamic testing,the external displacement control method is put forward based on the hardware control. The internal displacement sensor of the actuator is invalid on control and substituted by the LVDT displacement sensor connected with the specimen. The process of the feedback displacement and command error compensation is quickly implemented by the internal closed-loop control of the actuator. Compared with the iteratively approximate load control, this method not only makes the testing velocity fast, but also enables the error between command and feedback to be “zero”. The fast pseudo-dynamic testing about a cantilever beam is carried out by applying appropriate PID parameters of the actuator. The testing result shows that although this method has rather high requirements in the control system and electro-hydraulic servo load device, and the risk to some extent, the fast response of the actuator can be firmed by applying appropriate PID control parameters. This method provides a fast testing technology for velocity-dependent structures or specimens.
2428
Abstract: There is a set of 6 degrees of freedom (6-DOF) loading system with the simulated border for the application of material structural strength and reliability tests. This is a novel equipment for the tests of structural mechanical properties and reliability in different materials. This study showed a three-dimensional structure model, introduced the definition of the test of the 6-DOF loading system with the simulated border, and discussed the primary theory of the system and technical performance. Based on the matrix of direction cosine of the system, the solutions of inverse kinematics of 6-DOF loading system were given. The system of control was introduced as well.
894
Abstract: This paper discuss the possible fault about AMT. By using the information redundancy between those parts, the faults of sensors and actuators can be found. In addition, the corresponding tolerant is put forward. Based on the fault diagnosis method, Matlab/Simulink mathematical model of engine, clutch and transmission is built. The simulation results show that the model can satisfy the requirement of fault diagnosis, and has certain tolerances.
Test
344
Abstract: The stable operation of the chain magazine which is important functional parts of the machining centers affects the processing efficiency directly, requiring test bench and related experiments in progress for the chain magazine performance parameters. We design the hardware and software and complete PLC chain magazine test bench based on the control and experimental testing requirements in the analysis of specific institutions and chain magazine movement principle. PLC is the core of the test bench which can achieve the operation of the magazine and the control automatic tool changer. The PLC program according to the experimental requirements can control tool magazine and automatic tool changer different motion process for related test. PC can achieve magazine movement simulation, monitoring the process of the tool changing, as well as recording and analysis of test data. The Anti-interference cabinet of the test bench ensure the stable operation of control system. The tests proved that PLC-based test bench able to meets the test requirements and complete the default action for a series of related tests with simple control, stable operation and scalability.
330
Gearbox simulation test bench Download PDF

Info

Publication number
US7644630B2
US7644630B2US11/908,421US90842106AUS7644630B2US 7644630 B2US7644630 B2US 7644630B2US 90842106 AUS90842106 AUS 90842106AUS 7644630 B2US7644630 B2US 7644630B2
Authority
US
United States
Prior art keywords
test bench
along
Christian Agricole
Laurent Dubois
Renault SAS
Original Assignee
Priority to FR0502491ApriorityPriority to FR0502491priority
CriticalRenault SAS

Build A Computer Test Bench

Assigned to RENAULT S.A.SreassignmentRENAULT S.A.SAssignors: CRES, RAPHAEL, DUBOIS, LAURENT, HABAS, ALAIN, AGRICOLE, CHRISTIAN
Criticalpatent/US20080281567A1/en
Criticalpatent/US7644630B2/en
Critical
Critical
Critical
Emotiv test bench

Links

  • AbstractDescription13
  • Description238000007906compressionMethods0Description9
  • Description6
  • Description1
  • Description2
  • Description1
  • Description2

Images

Classifications

    • GPHYSICS
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M17/007Wheeled or endless-tracked vehicles
    • G01M17/0074Details, e.g. roller construction, vehicle restraining devices
    • GPHYSICS
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M13/02Gearings; Transmission mechanisms

Abstract

The invention relates to a test bench that reproduces the performance of a gearbox. The invention consists of: at least one gearshift module (2) comprising a linear motor (12) and a ball joint (14) that can be used to convert a linear motion of the motor (12) into a rotational motion of a gearshift shaft (5) and a force sensor (17) that can be used to measure the force applied to the gearshift shaft (5). In particular embodiments of the invention, the test bench also comprises a vertical linear selection module or a horizontal selection module. The modules employed can be used to simulate forces as a function of the shift and selection position in a manner that is representative of a gearbox.

Description

BACKGROUND OF THE INVENTION

I. Field of the Invention

The technical field of the present invention is that of test benches to simulate gearboxes, for example, vehicle gearboxes.

II. Description of Related Art

In the field of application of test benches, it is sometimes necessary to simulate a gearbox and this is particularly true of test benches for external control of gearboxes.

Test benches using pneumatic rams are currently known in the field of test benches that simulate gearboxes.

Such devices have the major disadvantage, on account of the use of pneumatic rams, of lacking in precision and above all of having performance that is limited in terms of responsiveness and in terms of dynamic range.

BRIEF SUMMARY OF THE INVENTION

The present invention overcomes these disadvantages by proposing a test bench that simulates a gearbox making it possible to generate loads equivalent to those of an actual gearbox and reproducing various aspects of behavior, according to the type of gearbox parametrized.

The subject of the invention is a test bench of the type that reproduces the behavior of a gearbox, characterized in that it comprises at least one gearshift module consisting of a linear motor and of a ball joint allowing a linear movement of the motor to be converted into a rotary movement of a gearshift shaft, and of a load sensor allowing the load applied to the gearshift shaft to be measured.

According to one feature of the invention, the linear motor moves translationally with respect to a slideway along a horizontal axis and the gearshift shaft pivots about a substantially vertical axis.

According to another feature of the invention, the test bench comprises a horizontal selection module consisting of a linear motor and of a ball joint allowing a linear movement of the motor to be converted into a rotary movement of a selection shaft, and of a load sensor allowing the load applied to the selection shaft to be measured.

According to another feature of the invention, the linear motor moves with respect to a slideway along a horizontal axis, and the selection shaft pivots about its substantially horizontal axis.

According to another feature of the invention, the test bench comprises a vertical selection module consisting of a linear motor, a tension/compression load sensor and a compensating means.

According to another feature of the invention, the linear motor moves with respect to a slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.

One advantage of the device according to the invention is that it allows the behavior of different types of gearbox to be reproduced.

Another advantage of the device according to the invention lies in its speed and in its precision when actuating the external controls.

Another advantage of the device according to the invention lies in the fact that it uses modules that are independent of one another and can readily be moved.

Test Bench Table

BRIEF DESCRIPTION OF THE DRAWINGS

Other features, details and advantages of the invention will become more clearly evident from the detailed description given hereinafter by way of indication with reference to the drawings in which:

FIGS. 1a to 1c depict functional diagrams illustrating applications of the test bench according to the invention,

FIG. 2 is a perspective depiction of one embodiment of the gearshift module 2,

FIG. 3 is a perspective depiction of one embodiment of the horizontal selection module 3,

FIG. 4 is a depiction in profile of one embodiment of the vertical selection module 4.

DETAILED DESCRIPTION OF THE INVENTION

The test bench that the present invention proposes to produce is a test bench that simulates a gearbox. More specifically, this test bench needs to reproduce various aspects of behavior corresponding to different types of gearbox. This test bench is particularly intended for gearbox external controls.

The gearboxes conventionally used are in the form of an automatic box or of a manual box.

FIG. 1a illustrates a first type of gearbox simulated by the invention. This type of gearbox is the automatic gearbox type 40. Mechanically controlled automatic gearboxes 40 are conventionally actuated by an external control 7 comprising a lever 8 moving along a longitudinal segment 41. The lever 8 therefore allows the mode P, R, N or D to be selected and allows gears to be changed manually (M+ or M−). In this case, only the gearshift module is used. For this type of box, only the gearshift mode corresponding to a torque about a substantially vertical axis needs to be simulated using a gearshift module 2 actuating a gearshift shaft connected to the lever 8.

FIG. 1b illustrates a second type of gearbox simulated by the invention. This type of gearbox is the manual gearbox type 42 with combined gear selection and gear shift. Manual gearboxes with combined selection and shifting are conventionally actuated by an external control 7 performed by a lever moving along a gate in the shape of a double “H”. The horizontal bar 44 of the gate corresponds to the neutral position (where no gear is engaged). The movement of the lever 8 in order to select the gear for the gear shift is broken down into a horizontal selection movement along the horizontal axis 44 of the gate and into a gearshift movement, along one of the three vertical axes 41a, 41b, 41c of the gate. The lever 8 is connected at its lower end to two cables 45 and 46 actuating an interconnection module 47. Movement along the horizontal axis 44 drives the first cable 45, while a gearshift drives the second cable 46. The interconnection module 47 (conventionally embodied in the form of a combination of link rods) allows the movements of these two cables 45, 46 to be converted into a vertical load and a torque about a vertical axis.

The control supplied to the gearbox is therefore a control combining a vertical selection control and a gearshift control. These two controls are transmitted to the box by a single component 5 (cable or shaft, for example). In this type of gearbox, the vertical selection mode, corresponding to a load along a substantially vertical axis, and the gearshift mode, corresponding to a torque about a substantially vertical axis, need to be simulated using a vertical selection module 4 and a gearshift module 2 acting on the same shaft 5.

FIG. 1c illustrates a third type of gearbox which is the manual gearbox type with separate gear selection and gearshift 43. Manual gearboxes in which the gears are selected and shifted separately are conventionally actuated by an external control 7 performed by a lever moving along a gate in the shape of a double “H”. The horizontal bar 44 of the gate corresponds to the neutral position (where no gear is engaged). The movement of the lever 8 in order to select the gear for the gear shift is broken down into a horizontal selection movement along the horizontal axis 44 of the gate and into a gearshift movement, along one of the three vertical axes 41a, 41b, 41c of the gate. The control supplied to the gearbox is therefore a control combining a horizontal selection control and a gearshift control. These controls are transmitted to the gearbox separately by the two distinct cables 48, 49 acting on shafts 5 and 6. In this type of gearbox, the horizontal selection mode, corresponding to a torque about a substantially horizontal axis, and the gearshift mode, corresponding to a torque about a substantially vertical axis, need to be simulated using a horizontal selection module 3 and a gearshift module 2 acting on two distinct components (shafts or cables).

The test bench according to the invention allows these three types of gearbox to be simulated by using a gearshift module 2, a horizontal selection module 3 and a vertical selection module 4.

FIG. 2 is a perspective depiction of one embodiment of the gearshift module 2. In this embodiment, the gearshift module 2 consists of a plate 10 secured to the frame of the test bench (not depicted in its complexity), of a horizontal slideway 11 secured to the plate 10, of a linear motor 12 able to move along the slideway 11 along a horizontal axis, and of an arm support 13, supporting an arm 15 by means of a ball joint 14. The arm 15 is secured to a control shaft 5 by a pivot connection provided by means of an axis substantially perpendicular to the axis Z of the control shaft 5. A guide device 18 secured to the plate 10 assists in guiding the rotation of the control shaft 5 about its substantially vertical axis Z, for example by means of a rolling bearing. The gearshift module 2 also comprises a load sensor 17 allowing the load applied to the gearshift shaft 5 to be measured. It may, for example, be possible to use a tension/compression sensor 17 positioned between the arm support 13 and the ball joint 14.

Embodying the gearshift module 2 in this way allows the horizontal linear movement of the motor 12 to be converted into a rotary movement of the shaft 5.

Use of a horizontal linear motor is particularly advantageous because such a motor is not disturbed by the forces generated by its own weight, allowing it to move very quickly and very precisely and therefore to subject the gearshift shaft 5 to rapid and very precise rotational movements. Such precision could not be achieved using a rotary motor or a device embodied using rams.

FIG. 3 is a perspective depiction of one embodiment of the horizontal selection module 3. In this embodiment, the horizontal selection module 3 consists of a unit 20 secured to the frame of the test bench, of a slideway 21 secured to the unit 20, of a linear motor 22 able to move along the slideway 21 along a horizontal axis, and of an arm support 23, supporting a substantially vertical arm 25 by means of a ball joint 24. The arm 25 is secured to a horizontal selection gear selection shaft 6. Rolling bearings 28 secured to the unit 20 support the gear selection shaft 6 while at the same time leaving it free to rotate about its axis. The horizontal selection module 3 also comprises a load sensor 27 allowing the load applied to the selection shaft 6 to be measured. It may, for example, be possible to use a tension/compression sensor 27 positioned between the arm support 23 and the ball joint 24.

Embodying the horizontal selection module 3 in this way allows the horizontal linear movement of the motor 22 to be converted into a rotary movement of the gear selection shaft 6 about a horizontal axis.

FIG. 4 is a profile view of one embodiment of the vertical selection module 4. In this embodiment, the vertical selection module 4 consists of a unit 30 secured to the frame of the test bench, of a slideway 31 secured to the unit 30, of a vertical linear motor 32 able to move along the slideway 31 along a vertical axis, and of a connecting rod support 33 supporting a substantially vertical connecting rod 35 by means of a ball joint 34. The connecting rod 35 is secured to the control shaft 5. A sleeve 38 secured to the unit 30 supports the shaft 5 while at the same time leaving it free to rotate and to effect a translational movement along and about its axis Z. A tensile/compressive load sensor 37 positioned for example between the support 33 and the ball joint 34 allows the vertical loads supplied to the gearshift shaft 5 to be measured.

Embodying the vertical selection module 4 in this way allows the vertical linear movement of the motor 32 to be transmitted to the shaft 5 while at the same time compensating for any discrepancies using the connecting rod 35 which constitutes a compensating means. This exemplary embodiment also depicts the arm 15 of the gearshift module 2. In this particular embodiment, the gearshift shaft 5 is no longer guided by the guide device 18 secured to the plate 10 (these two items being depicted in FIG. 2) but is guided by a sleeve 38 secured to the unit 30. The sleeve 38 guides the control shaft 5 in terms of translation and in terms of rotation along and about its substantially vertical axis Z.

In this embodiment of the invention, the vertical selection module 4 is used in combination with the gearshift module 2 in the context of the simulation of a gearbox in which the gear selection and gear shift are combined. These two modules 2 and 4 therefore allow the control shaft 5 to be subjected to a load and to a torque along and about its axis Z.

The modules 2, 3 and 4 are advantageously independent of one another so that they are positioned on the test bench or omitted from the test bench according to the type of gearbox that is to be reproduced. The modules used allow the loads to be simulated as a function of position during gear selection and gearshift in a way that is representative of the behavior of a gearbox.

Claims (20)

1. A test bench that reproduces behavior of a gearbox, comprising:
at least one gearshift module positioned on the test bench including a first linear motor and a first ball joint allowing a linear movement of the first linear motor to be converted into a rotary movement of a gearshift shaft attached to a gearshift lever to move the gearshift lever in a direction that is perpendicular to the linear movement of the first linear motor; and
a first load sensor allowing the load applied to the gearshift shaft to be measured.
2. The test bench as claimed in claim 1, wherein the first linear motor can move translationally with respect to a first slideway along a horizontal axis, and the gearshift shaft pivots about a substantially vertical axis.
3. A test bench that reproduces behavior of a gearbox, comprising:
at least one gearshift module positioned on the test bench including a first linear motor and a first ball joint allowing a linear movement of the first linear motor to be converted into a rotary movement of a gearshift shaft;
a first load sensor allowing the load applied to the gearshift shaft to be measured;
a horizontal selection module including a second linear motor and a second ball joint allowing a linear movement of the second linear motor to be converted into a rotary movement of a selection shaft; and
a second load sensor allowing the load applied to the selection shaft to be measured.
4. The test bench as claimed in claim 3, wherein the first linear motor can move translationally with respect to a first slideway along a horizontal axis, and the gearshift shaft pivots about a substantially vertical axis.
5. The test bench as claimed in claim 3, wherein the second linear motor can move translationally with respect to a second slideway along a horizontal axis, and the selection shaft pivots about its substantially horizontal axis.
6. The test bench as claimed in claim 4, wherein the second linear motor can move translationally with respect to a second slideway along a horizontal axis, and the selection shaft pivots about its substantially horizontal axis.
7. A test bench that reproduces behavior of a gearbox, comprising:
at least one gearshift module positioned on the test bench including a first linear motor and a first ball joint allowing a linear movement of the first linear motor to be converted into a rotary movement of a gearshift shaft;
a first load sensor allowing the load applied to the gearshift shaft to be measured; and
a vertical selection module including a second linear motor, a tension/compression load sensor, and a compensating means.
8. The test bench as claimed in claim 2, further comprising a vertical selection module including a second linear motor, a tension/compression load sensor, and a compensating means.
9. The test bench as claimed in claim 3, further comprising a vertical selection module including a third linear motor, a tension/compression load sensor, and a compensating means.
10. The test bench as claimed in claim 4, further comprising a vertical selection module including a third linear motor, a tension/compression load sensor, and a compensating means.
11. The test bench as claimed in claim 5, further comprising a vertical selection module including a third linear motor, a tension/compression load sensor, and a compensating means.
12. The test bench as claimed in claim 6, further comprising a vertical selection module including a third linear motor, a tension/compression load sensor, and a compensating means.
13. The test bench as claimed in claim 7, wherein the second linear motor can move translationally with respect to a second slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
14. The test bench as claimed in claim 8, wherein the second linear motor can move translationally with respect to a second slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
15. The test bench as claimed in claim 9, wherein the third linear motor can move translationally with respect to a third slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
16. The test bench as claimed in claim 10, wherein the third linear motor can move translationally with respect to a third slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
17. The test bench as claimed in claim 11, wherein the third linear motor can move translationally with respect to a third slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
18. The test bench as claimed in claim 12, wherein the third linear motor can move translationally with respect to a third slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
19. The test bench as claimed in claim 7, wherein the first linear motor can move translationally with respect to a first slideway along a horizontal axis, and the gearshift shaft pivots about a substantially vertical axis.
20. The test bench as claimed in claim 19, wherein the second linear motor can move translationally with respect to a second slideway along a vertical axis so as to cause the gearshift shaft to move translationally along its substantially vertical axis.
US11/908,4212005-03-142006-03-10Gearbox simulation test bench Expired - Fee RelatedUS7644630B2 (en)

Priority Applications (3)

Application NumberPriority DateFiling DateTitle
FR05024912005-03-14
US20080281567A1US20080281567A1 (en) 2008-11-13
US11/908,421Expired - Fee RelatedUS7644630B2 (en) 2005-03-142006-03-10Gearbox simulation test bench

Country Status (6)

CountryLink
EP (1) EP1877750A1 (en)
CN (1) CN100580410C (en)
WO (1) WO2006097655A1 (en)

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
CN101813495B (en) *2010-03-282012-03-14柳州桂通科技有限公司Micromotion gear recognizer for field test automobile
CN103267639B (en) *2013-04-282015-09-23苏州工业园区高登威科技有限公司 Simulation testing equipment
CN105486502B (en) *2015-12-302017-09-26合肥工业大学 A reciprocating rotating gantry excitation system
CN106441884A (en) *2016-12-012017-02-22武汉泛洲机械制造有限公司Multifunctional performance detection equipment and system of automobile gear shifting shaft
US3962912A (en) *1974-03-271976-06-15Jean BorieTest bench device for vehicles
US4466279A (en) 1982-09-221984-08-21Ford Motor CompanyAutomated manual transmission shifter
US5029683A (en) *1989-02-171991-07-09ValeoGear position detector for the control of a clutch associated with a gearbox
US5209141A (en) *1987-06-241993-05-11Kabushiki Kaisha Komatsu SeisakushoApparatus for controlling gear box
EP0860692A2 (en) 1997-02-251998-08-26FKI Engineering PLCRobot for operating motor vehicle control
US6807852B2 (en) *2001-10-292004-10-26EurocopterTest bench for testing a power transmission device and a test system comprising such a test bench provided with a power transmission device

Family Cites Families (9)

2005
  • 2006
    • 2006-03-10EPEP20060726237patent/EP1877750A1/ennot_activeWithdrawn
    • 2006-03-10WOPCT/FR2006/050213patent/WO2006097655A1/enactiveApplication Filing
* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3465577A (en) 1967-09-281969-09-09Rca CorpAutomobile control manipulating apparatus
DE2528920B2 (en) 1975-06-281977-06-30 Automatic gear-shifting, especially for a dauerrollpruefstand
DE3663406D1 (en) 1986-03-081989-06-22Schenck Ag CarlApparatus and process for the automatic operation of operating devices of motor vehicles
DE4129152A1 (en) 1991-09-021993-04-08Fraunhofer Ges ForschungPosition control for robotic working arm with damage protection for workpieces - has sensors to provide position dependent signals and to monitor pressure on tools
US3962912A (en) *1974-03-271976-06-15Jean BorieTest bench device for vehicles
US4466279A (en) 1982-09-221984-08-21Ford Motor CompanyAutomated manual transmission shifter
US5209141A (en) *1987-06-241993-05-11Kabushiki Kaisha Komatsu SeisakushoApparatus for controlling gear box
US5113704A (en) *1990-02-191992-05-19Hitachi Metals, Ltd.Gear tester
EP0860692A2 (en) 1997-02-251998-08-26FKI Engineering PLCRobot for operating motor vehicle control
US6807852B2 (en) *2001-10-292004-10-26EurocopterTest bench for testing a power transmission device and a test system comprising such a test bench provided with a power transmission device

Also Published As

Publication numberPublication date
EP1877750A1 (en) 2008-01-16
FR2883069A1 (en) 2006-09-15
CN101142471A (en) 2008-03-12
US4356724A (en) Apparatus and method for testing transmissions
DE19523141C2 (en) Switching device for a change speed transmission of a motor vehicle
US4459870A (en) Remote control mechanisms
US5952581A (en) Apparatus for testing the damping force of vibration dampers
CN102967460B (en) Gear-selecting and shifting performance automatic testing device and method
US7574939B2 (en) Intermediate segment of an articulated arm comprising a screw and nut transmission
US4649742A (en) Automatic gear-shifting arrangement
CN101477174A (en) Complex load behavior simulation and performance test apparatus for servo system
CN101000282A (en) Multifunction test device for wheel motion performance of planetary detection robot
KR100926575B1 (en) Efficiency tester for harmonic drive
US8997599B2 (en) Motorized joint with two pivot connections and humanoid robot which implements the joint
US3916712A (en) Transmission with transversely movable countershaft extension
US4756205A (en) Gear shifter for manual transmission systems

Legal Events

Owner name: RENAULT S.A.S, FRANCE

DateCodeTitleDescription
FPAYFee payment

FEPPFee payment procedure

LAPSLapse for failure to pay maintenance fees

STCHInformation on status: patent discontinuation

FPExpired due to failure to pay maintenance fee

: Car Rental Singapore To Malaysia With Driver

  • : Batman Vs Mr Freeze Abaixo De Zero Download
  • : Download Java Powered Whatsapp Messenger For Ipad
  • : I Am Sam Sub Indo
  • : Nfs Most Wanted For Pc
  • : Chick Corea Transcription Pdf To Jpg
  • : Dzongkha English Dictionary Pdf
  • : Descargar Lacrimosa Sehnsucht Limited Edition
  • Omgtennessee