US20030176258A1 - Control device for a synchromesh automatic transmission - Google Patents

Control device for a synchromesh automatic transmission Download PDF

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Publication number
US20030176258A1
US20030176258A1 US10/393,046 US39304603A US2003176258A1 US 20030176258 A1 US20030176258 A1 US 20030176258A1 US 39304603 A US39304603 A US 39304603A US 2003176258 A1 US2003176258 A1 US 2003176258A1
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Prior art keywords
shifting
selecting
output shaft
gears
input shaft
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Abandoned
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US10/393,046
Inventor
Toshio Ohtsuka
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Mitsubishi Electric Corp
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Mitsubishi Electric Corp
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Priority to US10/393,046 priority Critical patent/US20030176258A1/en
Publication of US20030176258A1 publication Critical patent/US20030176258A1/en
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H59/00Control inputs to control units of change-speed- or reversing-gearings for conveying rotary motion
    • F16H59/68Inputs being a function of gearing status
    • F16H59/70Inputs being a function of gearing status dependent on the ratio established
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H61/00Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
    • F16H61/26Generation or transmission of movements for final actuating mechanisms
    • F16H61/28Generation or transmission of movements for final actuating mechanisms with at least one movement of the final actuating mechanism being caused by a non-mechanical force, e.g. power-assisted
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H59/00Control inputs to control units of change-speed- or reversing-gearings for conveying rotary motion
    • F16H59/36Inputs being a function of speed
    • F16H59/44Inputs being a function of speed dependent on machine speed, e.g. the vehicle speed
    • F16H2059/443Detecting travel direction, e.g. the forward or reverse movement of the vehicle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H61/00Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
    • F16H61/26Generation or transmission of movements for final actuating mechanisms
    • F16H61/28Generation or transmission of movements for final actuating mechanisms with at least one movement of the final actuating mechanism being caused by a non-mechanical force, e.g. power-assisted
    • F16H2061/283Adjustment or calibration of actuator positions, e.g. neutral position
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H59/00Control inputs to control units of change-speed- or reversing-gearings for conveying rotary motion
    • F16H59/36Inputs being a function of speed
    • F16H59/38Inputs being a function of speed of gearing elements
    • F16H59/40Output shaft speed
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H59/00Control inputs to control units of change-speed- or reversing-gearings for conveying rotary motion
    • F16H59/36Inputs being a function of speed
    • F16H59/38Inputs being a function of speed of gearing elements
    • F16H59/42Input shaft speed
    • 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
    • Y10T74/19Gearing
    • Y10T74/19219Interchangeably locked
    • Y10T74/19251Control mechanism

Definitions

  • the present invention relates to a control device for a synchromesh automatic transmission, by which a gear can be securely changed to an aimed gear position.
  • a technique disclosed therein is that a combustion engine and a synchromesh automatic transmission are coupled through an electromagnetic clutch; a throttle opening degree is controlled so as to maintain a degree of change between a rotational speed of the combustion engine at time of releasing the electromagnetic clutch and a rotational speed of the combustion engine at time of recoupling the electromagnetic clutch upon switching of transmission gears within a predetermined range; and a control input is corrected by a learning routine, conducted by each gear changing operation to deal with scattering and various conditions of the combustion engine, whereby a shock, caused at time of changing the gears, is relaxed.
  • a shifting device changing the gear of the transmission
  • a pair of three-position oil pressure cylinders controlling a shifting and selecting lever respectively in an axial direction and a rotational direction is used.
  • shift rods are selected, and by actuating the three-position oil pressure cylinder for shifting, the selected shift rod is moved to switch a gear position.
  • an electromotive synchromesh automatic transmission for actuating the shifting and selecting operations using two motors is also generally used.
  • a gear position is switched such that a sleeve gear to be operated is selected by a selecting motor controlling a position by a selecting position sensor, and the sleeve gear is moved to be engaged with an aimed gear by the shifting motor controlling a shifting position by a shifting position sensor.
  • a control unit receiving a feed-back from the position sensors, controls the shifting position and a selecting position. Therefore, when the control unit or a system is erroneously operated to cause a situation that the aimed gear is not engaged and the electromagnetic clutch is coupled in a state that a gear different from the aimed gear is engaged, a shock occurs by an abrupt engine brake caused by an erroneous gear change, knocking of the engine occurs by an insufficient acceleration, or a traffic accident may be caused by an operation erroneously selecting forward gear positions and a backward gear position in an extreme case.
  • a control device for a synchromesh automatic transmission comprising:
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft
  • a shifting position sensor detecting a control input in the shifting direction by the shifting and selecting actuator
  • a selecting position sensor detecting a control input in the selecting direction by the shifting and selecting actuator
  • control unit detects a position of completing the operation from outputs from the shifting and selecting position sensors after finishing a gear changing operation, and judges whether or not the position of completing the operation is within a range of target position in order to finish the operation.
  • a control device for a synchromesh automatic transmission comprising:
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft
  • an input shaft rotational speed sensor detecting a rotational speed of the input shaft
  • an output shaft rotational speed sensor detecting a rotational speed of the output shaft
  • control unit calculates a target ratio of rotational speeds of the input shaft and the output shaft from a gear ratio of transmission gears, which are newly engaged after finishing a gear changing operation, judges whether or not the rotational speed ratio obtained from outputs of the input shaft rotational speed sensor and the output shaft rotational speed sensor is within the target rotational speed ratio, and makes the operation complete.
  • a control device for a synchromesh automatic transmission comprising:
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft
  • a reverse driving detecting means detecting an incident that the coupling mechanism is coupled with transmission gears for the reverse driving
  • control unit compares an instruction signal by the shifting lever with a detecting signal from the reverse driving detecting means after finishing a gear changing operation, and judges whether or not the instruction signal and the detecting signal match, and finishes the operation.
  • control device for the synchromesh automatic transmission there is provided the control device for the synchromesh automatic transmission
  • control device for the synchromesh automatic transmission there is provided the control device for the synchromesh automatic transmission
  • control device for the synchromesh automatic transmission there is provided the control device for the synchromesh automatic transmission
  • FIG. 1 is a block chart illustrating a structure of a control device for a synchromesh automatic transmission according to Embodiment 1 of the present invention
  • FIG. 2 illustrates a structure of a transmission of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention
  • FIG. 3 is a graph illustrating an operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIG. 4 is a graph illustrating an operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIG. 5 is a flow chart illustrating the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIG. 6 is a flow chart illustrating the operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIG. 7 is a flow chart illustrating the operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIGS. 1 through 7 A detailed explanation will be given of preferred embodiments of the present invention in reference to FIGS. 1 through 7 as follows, wherein the same numerical references are used for the same or similar portions and description of these portions is omitted.
  • FIGS. 1 through 7 illustrate a structure and operations of a control device for a synchromesh automatic transmission according to Embodiment 1 of the present invention.
  • FIG. 1 is a block chart illustrating a structure of a transmission.
  • FIG. 2 explains the structure of the transmission.
  • FIGS. 3 and 4 are graphs illustrating the operations.
  • FIGS. 5 through 7 are flow charts illustrating a controlling operation. In FIG.
  • numerical reference 1 designates a combustion engine equipped in a vehicle
  • numerical reference 2 designates an electromagnetic clutch, located in a crank shaft 1 a of the combustion engine 1 and coupling the combustion engine 1 with the synchromesh automatic transmission 3
  • numerical reference 4 designates a control unit controlling the automatic transmission 3
  • numerical reference 5 designates a shifting and selecting actuator controlled by the control unit 4 and operating an engagement of gears of the automatic transmission 3 , to be described below
  • numerical reference 6 designates a shifting and selecting position sensor detecting a moving position of the shifting and selecting actuator 5 .
  • Numerical reference 7 designates a throttle position sensor detecting an opening degree of a throttle valve 9 , positioned in an intake air passage 8 of the combustion engine 1 ;
  • numerical reference 10 designates an accelerator position sensor detecting an amount of stepping an accelerator pedal (not shown);
  • numerical reference 11 designates a throttle actuator controlling the opening degree of the throttle valve 9 in response to an output from the accelerator position sensor 10 or by an operation of the control unit 4 according to a predetermined program at time of changing gears; and
  • numerical reference 12 designates a shifting lever instructing the control unit 4 a shifting position, operated by a driver.
  • the automatic transmission 3 comprises: an input shaft 13 coupled to the electromagnetic clutch 2 ; a countershaft 15 coupled to the input shaft 13 by a primary gear set 14 ; an output shaft driving the vehicle; a first gear set 17 , a second gear set 18 , a third gear set 19 , a fifth gear set 20 , and a reverse gear set 21 respectively located between the countershaft 15 and the output shaft 16 as paired gears; and sleeve gears 22 a , 22 b , and 22 c being a coupling mechanism, fixed to the output shaft 16 in a rotational direction and equipped to be movable in an axial direction.
  • Gears on a side of the countershaft 15 of the gear sets 17 , 18 , 19 , 20 , and 21 are fixed to the countershaft 15 , and gears on a side of the output shaft 16 are equipped in the output shaft 16 so as to be rotatable, wherein the gears on the side of the output shaft 16 are individually fixed to the output shaft 16 by engagements with the sleeve gears 22 a , 22 b , and 22 c.
  • the electromagnetic clutch 2 generates a transmitting torque in proportional to an exciting current, and transmits or shuts down a motive power between the crankshaft 1 a of the combustion engine and the input shaft 13 of the automatic transmission 3 by a control of the control unit 4 .
  • FIG. 2 schematically illustrate a summary of an operation of the automatic transmission 3 by the shifting and selecting actuator 5 .
  • the shifting and selecting actuator 5 includes a shifting actuator 51 and the selecting actuator 54 .
  • the shifting actuator 51 comprises a shifting motor 52 and a decelerator 53 , and shifts the sleeve gears 22 a , 22 b , and 22 c on a side of the first, third, and fifth gears, a neutral position, and a side of the second, fourth, and reverse gears while detecting a shifting position by a shifting position sensor.
  • the selecting actuator 54 includes a selecting motor 55 and a decelerator 56 , and selects the sleeve gears 22 a , 22 b , and 22 c detecting a selecting position by a selecting position sensor 62 .
  • the gear sets 17 , 18 , 19 , and 20 of the automatic transmission 3 is for a forward driving, wherein the gear sets have different gear ratios.
  • Embodiment 1 an example that five stages of the forward driving and one stage of a reverse driving are used.
  • the sleeve gears 22 a , 22 b , and 22 c individually fixing the gear sets 17 , 18 , 19 , 20 , and 21 to the output shaft 16 .
  • the sleeve gear 22 a is interposed between the primary gear set 14 and the third gear set 19 .
  • the sleeve gear 22 b is interposed between the first gear set 17 and the second gear set 18 .
  • the sleeve gear 22 c is interposed between the fifth gear set 20 and the reverse gear set 21 .
  • One of the sleeve gears 22 a , 22 b , and 22 c is selected by the selecting actuator 54 , and the one is transferred on either side by the shifting actuator 51 , whereby one of the first through fifth forward gears, the reverse gear, and the neutral position is selected.
  • a fourth gear position is realized by coupling the primary gear set 14 with the output shaft 13 .
  • FIG. 3 illustrates a relationship between the shifting position obtained by the shifting position sensor 61 and an output voltage.
  • FIG. 4 illustrates a relationship between the selecting position obtained by the selecting position sensor 64 and the output voltage.
  • the shifting position sensor 61 outputs a voltage VYA when the sleeve gears 22 a , 22 b , and 22 c is on the side of the first, third, and fifth gears, wherein the voltage VYA is a voltage of a target position at time of controlling shifting by the control unit.
  • a voltage VYB is outputted from the shifting position sensor 61 in the neutral position.
  • a voltage VYC is the output voltage from the shifting position sensor 61 , being the voltage of the target position at time of controlling shifting.
  • an output and the voltage of the target position is VXC at time of selecting the sleeve gear 22 c .
  • a voltage VXB is the output and the voltage of the target position at time of selecting the sleeve gear 22 a , switching the third and fourth gears.
  • a voltage VXA is the output and the voltage of the target position at time of selecting the sleeve gear 22 b , switching the first and second gears.
  • a gear changing operation by the control unit 4 is performed by inputting the position signal of the shifting lever 12 , the signal from the accelerator position sensor 10 , and rotational speed signals from the input shaft rotational speed sensor 23 , the output shaft rotational speed sensor 24 , and combustion engine rotational speed sensor 26 , by determining the gear suitable for a driving condition based on a shifting pattern, memorized in the control unit 4 , and by operating the shifting and selecting actuator 5 detecting the shifting and selecting positions by the shifting and selecting position sensor 6 .
  • the automatic transmission 3 is turned off by cutting the excitation current of the electromagnetic clutch 2 , the sleeve gears 22 a , 22 b , 22 c are selected by instructing the shifting and selecting actuator 5 to operate, and a gear set or the above determined gear is coupled after releasing a present coupling of gear set.
  • the shifting and selecting position sensor 6 detects a completion of the coupling, the electromagnetic clutch 2 is coupled again.
  • the throttle actuator 11 is operated simultaneously with the cutting off of the excitation current of the electromagnetic clutch 2 , whereby the throttle valve 9 is throttled.
  • the throttle valve 9 is opened to a predetermined position by the output signals from the combustion engine rotational speed sensor 26 and the output shaft rotational speed sensor 24 .
  • Step 501 it is judged whether or not the shifting position is in a forward range based on an output value from the shifting and selecting position sensor 6 .
  • Step 502 is selected to judge turning-on or turning-off of the reverse gear switch 25 .
  • Step 503 is selected to judge turning-on or turning-off of the reverse gear switch 25 in a similar manner to that in Step 502 .
  • Cases that the reverse gear switch 25 is turned on in Step 502 based on the judgment of the forward range in Step 501 and that reverse gear switch 25 is turned on in Step 503 based on the judgment of the reverse range in Step 501 mean erroneous operations.
  • Step 504 is selected to set a target position flag NG.
  • Step 505 is processed.
  • Step 505 the rotational speed N of the output shaft 16 of the automatic transmission 3 is read out of an output from the output shaft rotational speed sensor 24 , and it is judged whether or not the rotational speed N is larger than a predetermined rotational speed N 1 . If N ⁇ N 1 , Step 506 is processed. If N ⁇ N 1 , Step 507 is processed. Step 506 judges a present gear position by comparing the rotational speeds of the input shaft 13 and the output shaft as described below in reference of FIG. 6. Step 507 judges that the present gear position based on a range of the output voltage from the shifting and selecting position sensor 6 as described below in reference of FIG. 7.
  • Step 506 An operation of Step 506 will be described in reference of FIG. 6.
  • N ⁇ N 1 synchronous rotational speed criteria values a and b are operated in Step 601 in FIG. 6, for example, as follows:
  • Steps 602 and 603 the rotational speed of the input shaft 13 of the automatic transmission 3 is respectively compared with the criteria values a and b, wherein the rotational speed of the input shaft 13 is the output from the input shaft rotational speed sensor 23 .
  • Step 602 when input shaft rotational speed of automatic transmission ⁇ a, Step 603 is processed.
  • Step 603 when input shaft rotational speed of automatic transmission ⁇ b, Step 604 is processed to set OK in the target position flag. If conditions of input shaft rotational speed of automatic transmission ⁇ a in Step 602 and input shaft rotational speed of automatic transmission ⁇ b in Step 603 are not established, Step 605 is processed to set NG in the target position flag. In other words, the rotational speeds of the input shaft 13 and the output shaft 16 of the automatic transmission 3 are compared, and when a ratio of error is within 3% in consideration of the gear ratios, it is judged that predetermined gear positions are realized.
  • Step 507 in FIG. 5 will be described in reference of FIG. 7.
  • criteria values for the shifting position and the selecting position of newly coupled gears are determined in Step 701 of FIG. 7 as follows:
  • a 1 criteria value for shifting position in first, third, and fifth gears
  • a 2 criteria value for shifting position in second, fourth, and reverse gears
  • b 1 criteria value for selecting position of first and second gears
  • Step 702 the target gear is judged. If the target gear is the first gear or the second gear, Step 703 is processed. If shifting position ⁇ a 1 is satisfied in Step 703 , the shifting position is judged normal, and Step 705 is processed to judge the selecting position. If the target gear is judged the second, fourth, or reverse gear, not the first, third, or gear, in Step 702 , Step 704 is processed. If shifting position >a 2 is satisfied in Step 704 , the shifting position is judged normal, and Step 705 is processed to judge the selecting position. If shifting position ⁇ a 1 in Step 703 or shifting position >a 2 in Step 704 is not satisfied, Step 710 is processed to set NG in the target position flag.
  • Step 706 is processed. If selecting position ⁇ b 1 is satisfied in Step 706 , the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag. If the target gear position is not the first or second gear in Step 705 , Step 707 is processed to judge the target gear. If the target gear is the third or fourth gear in Step 707 , Step 708 is processed. In Step 708 , if b 1 ⁇ selecting position ⁇ b 2 is satisfied, the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag. If the target gear is not the third or fourth gear in Step 707 , Step 709 is processed. When b 2 ⁇ selecting position is satisfied in Step 709 , the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag.
  • Step 710 is processed to set NG in the target position flag.
  • Step 508 is processed to check the target position flag. If the flag shows OK, Step 509 is processed to finish changing of the gears and to couple the electromagnetic clutch 2 . If the flag shows NG in Step 508 , Step 510 is processed to change the gears again, and Step 501 is processed to reconfirm the gear change. In other words, when the forward or reverse gears are erroneously operated in Steps 501 through 503 , or the positions of the gears are erroneously changed in Steps 505 to 507 , the flag shows NG. Then, the gear changing operation is again conducted in Step 510 until the flag shows OK.
  • the first advantage of the control device for the synchromesh automatic transmission according to the present invention is that the gears are securely changed.
  • the second advantage of the control device for the synchromesh automatic transmission according to the present invention is that a shock and so on are not caused at time of changing the gears.
  • the third advantage of the control device for the synchromesh automatic transmission according to the present invention is that a danger of changing to other than an aimed gear position can be avoided.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Control Of Transmission Device (AREA)
  • Gear-Shifting Mechanisms (AREA)

Abstract

A control device for a synchromesh automatic transmission comprising: an input shaft 13 driven by a combustion engine 1; an output shaft 16 coupled to the input shaft 13 by gears; a plurality of groups of transmission gears 17 through 21 having different gear ratios and interposed between the input shaft 13 and the output shaft 16; sleeve gears 22 a , 22 b, and 22 c coupling any one of the transmission gears 17 through 21 with the output shaft 16; a shifting and selecting actuator 5 operating the sleeve gears 22 a , 22 b, and 22 c; a shifting and selecting position sensor 6 detecting control inputs in a shifting direction and a selecting direction; and a control unit 4 instructing operations to the above components, wherein the control unit judges whether or not a position of completing the operations is within a range of a target position based on an output from the shifting and selecting position sensor 6 at time of finishing the gear changing operation.

Description

    BACKGROUND OF THE INVENTION
  • 1. FIELD OF THE INVENTION [0001]
  • The present invention relates to a control device for a synchromesh automatic transmission, by which a gear can be securely changed to an aimed gear position. [0002]
  • 2. DISCUSSION OF BACKGROUND [0003]
  • As a control device for a synchromesh automatic transmission, used for vehicles, is disclosed in, for example, Japanese Unexamined Patent Publication JP-A-63-270252. A technique disclosed therein is that a combustion engine and a synchromesh automatic transmission are coupled through an electromagnetic clutch; a throttle opening degree is controlled so as to maintain a degree of change between a rotational speed of the combustion engine at time of releasing the electromagnetic clutch and a rotational speed of the combustion engine at time of recoupling the electromagnetic clutch upon switching of transmission gears within a predetermined range; and a control input is corrected by a learning routine, conducted by each gear changing operation to deal with scattering and various conditions of the combustion engine, whereby a shock, caused at time of changing the gears, is relaxed. [0004]
  • In a shifting device, changing the gear of the transmission, according to the conventional technique, a pair of three-position oil pressure cylinders, controlling a shifting and selecting lever respectively in an axial direction and a rotational direction is used. By actuating the three-position oil pressure cylinder for selecting, shift rods are selected, and by actuating the three-position oil pressure cylinder for shifting, the selected shift rod is moved to switch a gear position. Other than the shifting device of the oil pressure type, an electromotive synchromesh automatic transmission for actuating the shifting and selecting operations using two motors is also generally used. In such an electromotive synchromesh automatic transmission, a gear position is switched such that a sleeve gear to be operated is selected by a selecting motor controlling a position by a selecting position sensor, and the sleeve gear is moved to be engaged with an aimed gear by the shifting motor controlling a shifting position by a shifting position sensor. [0005]
  • However, in this synchromesh automatic transmission, a control unit, receiving a feed-back from the position sensors, controls the shifting position and a selecting position. Therefore, when the control unit or a system is erroneously operated to cause a situation that the aimed gear is not engaged and the electromagnetic clutch is coupled in a state that a gear different from the aimed gear is engaged, a shock occurs by an abrupt engine brake caused by an erroneous gear change, knocking of the engine occurs by an insufficient acceleration, or a traffic accident may be caused by an operation erroneously selecting forward gear positions and a backward gear position in an extreme case. [0006]
  • SUMMARY OF THE INVENTION
  • It is an object of the present invention to solve the above-mentioned problems inherent in the conventional technique and to provide a control device for a synchromesh automatic transmission, which can be stably operated without erroneous operations. [0007]
  • According to a first aspect of the present invention, there is provided a control device for a synchromesh automatic transmission comprising: [0008]
  • an input shaft coupled to a crank shaft of a combustion engine through a clutch mechanism; [0009]
  • an output shaft coupled to the input shaft by gears; [0010]
  • a plurality of groups of transmission gears, having different gear ratios and interposed between the input shaft and the output shaft; [0011]
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft; [0012]
  • a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions; [0013]
  • a shifting position sensor detecting a control input in the shifting direction by the shifting and selecting actuator; [0014]
  • a selecting position sensor detecting a control input in the selecting direction by the shifting and selecting actuator; and [0015]
  • a control unit instructing an operation to the shifting and selecting actuator, [0016]
  • wherein the control unit detects a position of completing the operation from outputs from the shifting and selecting position sensors after finishing a gear changing operation, and judges whether or not the position of completing the operation is within a range of target position in order to finish the operation. [0017]
  • According to a second aspect of the present invention, there is provided a control device for a synchromesh automatic transmission comprising: [0018]
  • an input shaft coupled to a crank shaft of a combustion engine through a clutch mechanism; [0019]
  • an output shaft coupled to the input shaft by gears; [0020]
  • a plurality of groups of transmission gears having different gear ratios and interposed between the input shaft and the output shaft; [0021]
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft; [0022]
  • a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions; [0023]
  • an input shaft rotational speed sensor detecting a rotational speed of the input shaft; [0024]
  • an output shaft rotational speed sensor detecting a rotational speed of the output shaft; and [0025]
  • a control unit instructing an operation to the shifting and selecting actuator, [0026]
  • wherein the control unit calculates a target ratio of rotational speeds of the input shaft and the output shaft from a gear ratio of transmission gears, which are newly engaged after finishing a gear changing operation, judges whether or not the rotational speed ratio obtained from outputs of the input shaft rotational speed sensor and the output shaft rotational speed sensor is within the target rotational speed ratio, and makes the operation complete. [0027]
  • According to a third aspect of the present invention, there is provided a control device for a synchromesh automatic transmission comprising: [0028]
  • an input shaft coupled to a crankshaft of a combustion engine through a clutch mechanism; [0029]
  • an output shaft coupled to the input shaft by gears; [0030]
  • a plurality of groups of transmission gears having different gear ratios and interposed between the input shaft and the output shaft, and one of the groups of the transmission gears is for a reverse driving; [0031]
  • a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft; [0032]
  • a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions; [0033]
  • a reverse driving detecting means detecting an incident that the coupling mechanism is coupled with transmission gears for the reverse driving; [0034]
  • a control unit instructing an operation to the shifting and selecting actuator; and [0035]
  • a shifting lever, through which an operator transmits operating conditions to the control unit, [0036]
  • wherein the control unit compares an instruction signal by the shifting lever with a detecting signal from the reverse driving detecting means after finishing a gear changing operation, and judges whether or not the instruction signal and the detecting signal match, and finishes the operation. [0037]
  • According to a fourth aspect of the present invention, there is provided the control device for the synchromesh automatic transmission, [0038]
  • wherein when the control unit judges that the position of completing the operation is not within the range of target position, the gear changing operation is repeated. [0039]
  • According to a fifth aspect of the present invention, there is provided the control device for the synchromesh automatic transmission, [0040]
  • wherein when the control unit judges that the rotational speed ratio is not within the range of the target rotational speed ratio, the gear changing operation is repeated. [0041]
  • According to a sixth aspect of the present invention, there is provided the control device for the synchromesh automatic transmission, [0042]
  • wherein when the control unit judges that the instruction signal from the shifting lever does not match the detecting signal from the reverse driving detecting means, the gear changing operation is repeated.[0043]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • A more complete appreciation of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein: [0044]
  • FIG. 1 is a block chart illustrating a structure of a control device for a synchromesh automatic transmission according to Embodiment 1 of the present invention; [0045]
  • FIG. 2 illustrates a structure of a transmission of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention; [0046]
  • FIG. 3 is a graph illustrating an operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention; [0047]
  • FIG. 4 is a graph illustrating an operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention; [0048]
  • FIG. 5 is a flow chart illustrating the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention; [0049]
  • FIG. 6 is a flow chart illustrating the operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention; and [0050]
  • FIG. 7 is a flow chart illustrating the operation of the control device for the synchromesh automatic transmission according to Embodiment 1 of the present invention.[0051]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • A detailed explanation will be given of preferred embodiments of the present invention in reference to FIGS. 1 through 7 as follows, wherein the same numerical references are used for the same or similar portions and description of these portions is omitted. [0052]
  • Embodiment 1 [0053]
  • FIGS. 1 through 7 illustrate a structure and operations of a control device for a synchromesh automatic transmission according to Embodiment 1 of the present invention. FIG. 1 is a block chart illustrating a structure of a transmission. FIG. 2 explains the structure of the transmission. FIGS. [0054] 3 and 4 are graphs illustrating the operations. FIGS. 5 through 7 are flow charts illustrating a controlling operation. In FIG. 1, numerical reference 1 designates a combustion engine equipped in a vehicle; numerical reference 2 designates an electromagnetic clutch, located in a crank shaft 1 a of the combustion engine 1 and coupling the combustion engine 1 with the synchromesh automatic transmission 3; numerical reference 4 designates a control unit controlling the automatic transmission 3; numerical reference 5 designates a shifting and selecting actuator controlled by the control unit 4 and operating an engagement of gears of the automatic transmission 3, to be described below; and numerical reference 6 designates a shifting and selecting position sensor detecting a moving position of the shifting and selecting actuator 5.
  • Numerical reference [0055] 7 designates a throttle position sensor detecting an opening degree of a throttle valve 9, positioned in an intake air passage 8 of the combustion engine 1; numerical reference 10 designates an accelerator position sensor detecting an amount of stepping an accelerator pedal (not shown); numerical reference 11 designates a throttle actuator controlling the opening degree of the throttle valve 9 in response to an output from the accelerator position sensor 10 or by an operation of the control unit 4 according to a predetermined program at time of changing gears; and numerical reference 12 designates a shifting lever instructing the control unit 4 a shifting position, operated by a driver.
  • The automatic transmission [0056] 3 comprises: an input shaft 13 coupled to the electromagnetic clutch 2; a countershaft 15 coupled to the input shaft 13 by a primary gear set 14; an output shaft driving the vehicle; a first gear set 17, a second gear set 18, a third gear set 19, a fifth gear set 20, and a reverse gear set 21 respectively located between the countershaft 15 and the output shaft 16 as paired gears; and sleeve gears 22 a, 22 b, and 22 c being a coupling mechanism, fixed to the output shaft 16 in a rotational direction and equipped to be movable in an axial direction. Gears on a side of the countershaft 15 of the gear sets 17, 18, 19, 20, and 21 are fixed to the countershaft 15, and gears on a side of the output shaft 16 are equipped in the output shaft 16 so as to be rotatable, wherein the gears on the side of the output shaft 16 are individually fixed to the output shaft 16 by engagements with the sleeve gears 22 a, 22 b, and 22 c.
  • [0057] Numerical reference 23 designates an input shaft rotational speed sensor detecting a rotational speed of the input shaft 13; numerical reference 24 designates an output shaft rotational speed sensor detecting a rotational speed of the output shaft; numerical reference 25 designates a reverse gear switch detecting an engagement between the sleeve gear 22 c and the reverse gear set 21; and numerical reference 26 designates a combustion engine rotational speed sensor detecting a rotational speed of the combustion engine 1. Further, the electromagnetic clutch 2 generates a transmitting torque in proportional to an exciting current, and transmits or shuts down a motive power between the crankshaft 1a of the combustion engine and the input shaft 13 of the automatic transmission 3 by a control of the control unit 4.
  • FIG. 2 schematically illustrate a summary of an operation of the automatic transmission [0058] 3 by the shifting and selecting actuator 5. The shifting and selecting actuator 5 includes a shifting actuator 51 and the selecting actuator 54. The shifting actuator 51 comprises a shifting motor 52 and a decelerator 53, and shifts the sleeve gears 22 a, 22 b, and 22 c on a side of the first, third, and fifth gears, a neutral position, and a side of the second, fourth, and reverse gears while detecting a shifting position by a shifting position sensor. Further, the selecting actuator 54 includes a selecting motor 55 and a decelerator 56, and selects the sleeve gears 22 a, 22 b, and 22 c detecting a selecting position by a selecting position sensor 62.
  • The gear sets [0059] 17, 18, 19, and 20 of the automatic transmission 3 is for a forward driving, wherein the gear sets have different gear ratios. In Embodiment 1, an example that five stages of the forward driving and one stage of a reverse driving are used. The sleeve gears 22 a, 22 b, and 22 c individually fixing the gear sets 17, 18, 19, 20, and 21 to the output shaft 16. The sleeve gear 22 a is interposed between the primary gear set 14 and the third gear set 19. The sleeve gear 22 b is interposed between the first gear set 17 and the second gear set 18. The sleeve gear 22 c is interposed between the fifth gear set 20 and the reverse gear set 21. One of the sleeve gears 22 a, 22 b, and 22 c is selected by the selecting actuator 54, and the one is transferred on either side by the shifting actuator 51, whereby one of the first through fifth forward gears, the reverse gear, and the neutral position is selected. In a structure illustrated in FIG. 1, a fourth gear position is realized by coupling the primary gear set 14 with the output shaft 13.
  • FIG. 3 illustrates a relationship between the shifting position obtained by the shifting [0060] position sensor 61 and an output voltage. FIG. 4 illustrates a relationship between the selecting position obtained by the selecting position sensor 64 and the output voltage. The shifting position sensor 61 outputs a voltage VYA when the sleeve gears 22 a, 22 b, and 22 c is on the side of the first, third, and fifth gears, wherein the voltage VYA is a voltage of a target position at time of controlling shifting by the control unit. In a similar manner thereto, in the neutral position, a voltage VYB is outputted from the shifting position sensor 61. Further, when the sleeve gears are on the side of the second, fourth, and reverse gears, a voltage VYC is the output voltage from the shifting position sensor 61, being the voltage of the target position at time of controlling shifting. Further, in the selecting position sensor 64, an output and the voltage of the target position is VXC at time of selecting the sleeve gear 22 c. A voltage VXB is the output and the voltage of the target position at time of selecting the sleeve gear 22 a, switching the third and fourth gears. A voltage VXA is the output and the voltage of the target position at time of selecting the sleeve gear 22 b, switching the first and second gears.
  • A gear changing operation by the [0061] control unit 4 is performed by inputting the position signal of the shifting lever 12, the signal from the accelerator position sensor 10, and rotational speed signals from the input shaft rotational speed sensor 23, the output shaft rotational speed sensor 24, and combustion engine rotational speed sensor 26, by determining the gear suitable for a driving condition based on a shifting pattern, memorized in the control unit 4, and by operating the shifting and selecting actuator 5 detecting the shifting and selecting positions by the shifting and selecting position sensor 6.
  • In this operation, at first, the automatic transmission [0062] 3 is turned off by cutting the excitation current of the electromagnetic clutch 2, the sleeve gears 22 a, 22 b, 22 c are selected by instructing the shifting and selecting actuator 5 to operate, and a gear set or the above determined gear is coupled after releasing a present coupling of gear set. When the shifting and selecting position sensor 6 detects a completion of the coupling, the electromagnetic clutch 2 is coupled again. In this procedure, the throttle actuator 11 is operated simultaneously with the cutting off of the excitation current of the electromagnetic clutch 2, whereby the throttle valve 9 is throttled. When the electromagnetic clutch 2 is coupled again, the throttle valve 9 is opened to a predetermined position by the output signals from the combustion engine rotational speed sensor 26 and the output shaft rotational speed sensor 24.
  • In the control device for the synchromesh automatic transmission according to Embodiment 1 having the above-mentioned structure and operation, an example of a gear changing control by the [0063] control unit 4 is described in reference of a flow chart of FIG. 5. When the control unit 4 judges that a control of switching the gears based on the shifting pattern is completed, in other words, when predetermined sleeve gears 22 a, 22 b, and 22 c are transferred to predetermined positions, the following judgment and control are conducted before recoupling the electromagnetic clutch 2. In Step 501, it is judged whether or not the shifting position is in a forward range based on an output value from the shifting and selecting position sensor 6. When it is judged to be in the forward range, Step 502 is selected to judge turning-on or turning-off of the reverse gear switch 25.
  • When the shifting position is judged in a reverse range in [0064] Step 501, Step 503 is selected to judge turning-on or turning-off of the reverse gear switch 25 in a similar manner to that in Step 502. Cases that the reverse gear switch 25 is turned on in Step 502 based on the judgment of the forward range in Step 501 and that reverse gear switch 25 is turned on in Step 503 based on the judgment of the reverse range in Step 501 mean erroneous operations. In both of the cases, Step 504 is selected to set a target position flag NG. When a normal operation is judged in Steps 502 and 503, Step 505 is processed.
  • In [0065] Step 505, the rotational speed N of the output shaft 16 of the automatic transmission 3 is read out of an output from the output shaft rotational speed sensor 24, and it is judged whether or not the rotational speed N is larger than a predetermined rotational speed N1. If N≧N1, Step 506 is processed. If N≦N1, Step 507 is processed. Step 506 judges a present gear position by comparing the rotational speeds of the input shaft 13 and the output shaft as described below in reference of FIG. 6. Step 507 judges that the present gear position based on a range of the output voltage from the shifting and selecting position sensor 6 as described below in reference of FIG. 7.
  • An operation of [0066] Step 506 will be described in reference of FIG. 6. When N≧N1, synchronous rotational speed criteria values a and b are operated in Step 601 in FIG. 6, for example, as follows:
  • a=output shaft rotational speed N of automatic transmission [0067] 3×gear ratio of target gears ×0.97; and
  • b=output shaft rotational speed N of automatic transmission [0068] 3×gear ratio of target gears ×1.03 In Steps 602 and 603, the rotational speed of the input shaft 13 of the automatic transmission 3 is respectively compared with the criteria values a and b, wherein the rotational speed of the input shaft 13 is the output from the input shaft rotational speed sensor 23.
  • In [0069] Step 602, when input shaft rotational speed of automatic transmission ≧a, Step 603 is processed. In Step 603, when input shaft rotational speed of automatic transmission ≦b, Step 604 is processed to set OK in the target position flag. If conditions of input shaft rotational speed of automatic transmission ≧a in Step 602 and input shaft rotational speed of automatic transmission ≦b in Step 603 are not established, Step 605 is processed to set NG in the target position flag. In other words, the rotational speeds of the input shaft 13 and the output shaft 16 of the automatic transmission 3 are compared, and when a ratio of error is within 3% in consideration of the gear ratios, it is judged that predetermined gear positions are realized.
  • In the next, an operation of [0070] Step 507 in FIG. 5 will be described in reference of FIG. 7. When N≦N1 in Step 505 of FIG. 5 is established, criteria values for the shifting position and the selecting position of newly coupled gears are determined in Step 701 of FIG. 7 as follows:
  • a[0071] 1=criteria value for shifting position in first, third, and fifth gears;
  • a[0072] 2=criteria value for shifting position in second, fourth, and reverse gears;
  • b[0073] 1=criteria value for selecting position of first and second gears; and
  • b[0074] 2=criteria value for selecting position of fifth and reverse gears,
  • wherein the criteria values for the shifting and selecting positions in an aimed gear position. [0075]
  • In [0076] Step 702, the target gear is judged. If the target gear is the first gear or the second gear, Step 703 is processed. If shifting position <a1 is satisfied in Step 703, the shifting position is judged normal, and Step 705 is processed to judge the selecting position. If the target gear is judged the second, fourth, or reverse gear, not the first, third, or gear, in Step 702, Step 704 is processed. If shifting position >a2 is satisfied in Step 704, the shifting position is judged normal, and Step 705 is processed to judge the selecting position. If shifting position <a1 in Step 703 or shifting position >a2 in Step 704 is not satisfied, Step 710 is processed to set NG in the target position flag.
  • If the target gear position is judged the first or second gear in [0077] Step 705, Step 706 is processed. If selecting position <b1 is satisfied in Step 706, the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag. If the target gear position is not the first or second gear in Step 705, Step 707 is processed to judge the target gear. If the target gear is the third or fourth gear in Step 707, Step 708 is processed. In Step 708, if b1≦selecting position ≦b2 is satisfied, the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag. If the target gear is not the third or fourth gear in Step 707, Step 709 is processed. When b2<selecting position is satisfied in Step 709, the selecting position is judged normal, and Step 711 is processed to set OK in the target position flag.
  • If selecting position <b[0078] 1 in Step 706, b1≦selecting position ≦b in Step 708, or b2<selecting position in Step 709 is not satisfied, Step 710 is processed to set NG in the target position flag.
  • In the next, the process returns to FIG. 5. After processing [0079] Step 504, Step 506, or Step 507, Step 508 is processed to check the target position flag. If the flag shows OK, Step 509 is processed to finish changing of the gears and to couple the electromagnetic clutch 2. If the flag shows NG in Step 508, Step 510 is processed to change the gears again, and Step 501 is processed to reconfirm the gear change. In other words, when the forward or reverse gears are erroneously operated in Steps 501 through 503, or the positions of the gears are erroneously changed in Steps 505 to 507, the flag shows NG. Then, the gear changing operation is again conducted in Step 510 until the flag shows OK.
  • In the above routine, because the judgment of output shaft rotational speed N of automatic transmission [0080] 3≧ N1 in Step 505 is apt to cause errors in the output from the rotational speed sensor and in the operation under a low rotational speed range, the judgment is separated to that for a synchronous rotation at a high speed range and that by the position sensor at a low speed range. In case that the output from the rotational speed sensor has no problem, it is possible to select either judgment in all rotational speed ranges, or use both judgments regardless of the rotational speed from the output shaft.
  • The first advantage of the control device for the synchromesh automatic transmission according to the present invention is that the gears are securely changed. [0081]
  • The second advantage of the control device for the synchromesh automatic transmission according to the present invention is that a shock and so on are not caused at time of changing the gears. [0082]
  • The third advantage of the control device for the synchromesh automatic transmission according to the present invention is that a danger of changing to other than an aimed gear position can be avoided. [0083]
  • Obviously, numerous modifications and variations of the present invention are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims, the invention may be practiced otherwise than as specifically described herein. [0084]
  • The entire disclosure of Japanese Patent Application No. 2000-124792 filed on Apr. 25, 2000 including specification, claims, drawings and summary are incorporated herein by reference in its entirety. [0085]

Claims (6)

What is claimed is:
1. A control device for a synchromesh automatic transmission comprising:
an input shaft coupled with a crank shaft of a combustion engine;
an output shaft coupled to the input shaft by gears;
a plurality of groups of transmission gears having different gear ratios and interposed between the input shaft and the output shaft;
a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft;
a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions;
a shifting position sensor detecting a control input in the shifting direction by the shifting and selecting actuator;
a selecting position sensor detecting a control input in the selecting direction by the shifting and selecting actuator; and
a control unit instructing an operation to the shifting and selecting actuator,
wherein the control unit detects a position of completing the operation from outputs from the shifting and selecting position sensors after finishing a gear changing operation, and judges whether or not the position of completing the operation is within a range of target position in order to finish the operation.
2. A control device for a synchromesh automatic transmission comprising:
an input shaft coupled to a crankshaft of a combustion engine through a clutch mechanism;
an output shaft coupled to the input shaft by gears;
a plurality of groups of transmission gears having different gear ratios and interposed between the input shaft and the output shaft;
a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears and the output shaft;
a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions;
an input shaft rotational speed sensor detecting a rotational speed of the input shaft;
an output shaft rotational speed sensor detecting a rotational speed of the output shaft; and
a control unit commanding an operation to the shifting and selecting actuator,
wherein the control unit calculates a target ratio of the rotational speeds of the input shaft and the output shaft from a gear ratio of transmission gears, which are newly engaged after finishing a gear changing operation, judges whether or not a rotational speed ratio obtained from outputs of the input shaft rotational speed sensor and the output shaft rotational speed sensor is within the target rotational speed ratio, and makes the operation complete.
3. A control device for a synchromesh automatic transmission comprising:
an input shaft coupled to a crankshaft of a combustion engine through a clutch mechanism;
an output shaft coupled to the input shaft by gears;
a plurality of groups of transmission gears having different gear ratios and interposed between the input shaft and the output shaft, and one of the groups of the transmission gears is for a reverse driving;
a coupling mechanism selectively coupling one of the plurality of groups of the transmission gears with the output shaft;
a shifting and selecting actuator operating the coupling mechanism in shifting and selecting directions;
a reverse driving detecting means detecting an incident that the coupling mechanism is coupled with the transmission gears for the reverse driving;
a control unit instructing an operation to the shifting and selecting actuator; and
a shifting lever, through which an operator transmits operating conditions to the control unit,
wherein the control unit compares an instruction signal by the shifting lever with a detecting signal from the reverse driving detecting means after finishing a gear changing operation, judges whether or not the instruction signal and the detecting signal match, and finishes the operation.
4. The control device for the synchromesh automatic transmission according to claim 1,
wherein when the control unit judges that the position of completing the operation is not within the range of target position, the gear changing operation is repeated.
5. The control device for the synchromesh automatic transmission according to claim 2,
wherein when the control unit judges that the rotational speed ratio is not within the range of the target rotational speed ratio, the gear changing operation is repeated.
6. The control device for the synchromesh automatic transmission according to claim 3,
wherein when the control unit judges that the instruction signal from the shifting lever does not match the detecting signal from the reverse driving detecting means, the gear changing operation is repeated.
US10/393,046 2000-04-25 2003-03-21 Control device for a synchromesh automatic transmission Abandoned US20030176258A1 (en)

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JP2000124792A JP2001304390A (en) 2000-04-25 2000-04-25 Control device for synchronous mesh automatic transmission
US09/613,715 US6561950B1 (en) 2000-04-25 2000-07-11 Control device for a synchromesh automatic transmission
US10/393,046 US20030176258A1 (en) 2000-04-25 2003-03-21 Control device for a synchromesh automatic transmission

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009115167A3 (en) * 2008-03-15 2009-12-03 Wabco Gmbh Transmission actuator
US20110202231A1 (en) * 2009-02-27 2011-08-18 Toyota Jidosha Kabushiki Kaisha Vehicle control device
US8335619B2 (en) 2007-05-25 2012-12-18 Toyota Jidosha Kabushiki Kaisha Shift switching device
US8676460B2 (en) 2009-03-27 2014-03-18 Toyota Jidosha Kabushiki Kaisha Shift control device for vehicle

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3650379B2 (en) * 2002-07-22 2005-05-18 三菱電機株式会社 Control device for synchronous mesh automatic transmission
US7367918B2 (en) * 2005-11-08 2008-05-06 Zf Friedrichshafen Ag Method for self-configuring automated mechanical transmission and electronic controller
ATE462095T1 (en) * 2005-12-14 2010-04-15 Luk Lamellen & Kupplungsbau METHOD AND DEVICE FOR SHIFTING GEARS OF AN AUTOMATIC TRANSMISSION
JP4598100B2 (en) * 2008-04-17 2010-12-15 三菱電機株式会社 Transmission control device
JP4930457B2 (en) 2008-05-26 2012-05-16 トヨタ自動車株式会社 Vehicle control device
JP5029511B2 (en) * 2008-06-25 2012-09-19 日産自動車株式会社 Manual transmission clutch rotation synchronization control device
FR3030005B1 (en) * 2014-12-15 2016-12-09 Renault Sa METHOD FOR CONTROLLING A DISENGAGEMENT LIMIT POSITION OF A MOBILE CRABOT FOR TRANSMISSION OF MOTOR VEHICLE AND TRANSMISSION FOR CORRESPONDING MOTOR VEHICLE

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4766774A (en) * 1985-08-29 1988-08-30 Isuzu Motors Limited Shift control method and apparatus for automatic transmissions used in automotive vehicles
US4796485A (en) * 1984-10-25 1989-01-10 Jidosha Kiki Co., Ltd. Remote control apparatus for transmission
US5219391A (en) * 1991-12-06 1993-06-15 Eaton Corporation Transmission shifter having automatic adjustment of control parameters
US6227063B1 (en) * 1999-01-14 2001-05-08 Aisin Ai Co., Ltd. Automatically operated transmission and controlling method therefor
US6276224B1 (en) * 1999-05-25 2001-08-21 Aisin Ai Co., Ltd Shift control apparatus for transmission

Family Cites Families (26)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS6011762A (en) * 1983-06-30 1985-01-22 Isuzu Motors Ltd Shift control device for automatic transmission
JPS6145163A (en) * 1984-08-10 1986-03-05 Hitachi Ltd automatic transmission system
JPS6154332A (en) * 1984-08-21 1986-03-18 Toyota Motor Corp Method of controlling vehicle load
JPS6372951A (en) * 1986-09-12 1988-04-02 Diesel Kiki Co Ltd Automatic transmission
JPS63270252A (en) 1987-04-30 1988-11-08 Toyota Motor Corp Control method for synchronous mesh automatic transmission
JPH07109243B2 (en) * 1988-01-25 1995-11-22 日産自動車株式会社 Shift control device for automatic transmission
JPH02157456A (en) * 1988-12-12 1990-06-18 Nissan Motor Co Ltd Vehicle engine output control device
AU619229B2 (en) * 1988-12-16 1992-01-23 Isuzu Motors Limited Transmission control apparatus
US5167311A (en) * 1989-09-26 1992-12-01 Zexel Corporation Transmission control system with gear shift failure detection
GB9001273D0 (en) 1990-01-19 1990-03-21 Eaton Corp Control and method for controlling amt system including in-gear fault detection & tolerance
US5050079A (en) * 1990-08-17 1991-09-17 Eaton Corporation Mode control for mechanical transmission system with semi-automatic shift implementation and manual and automatic shift preselection modes
JPH04113075A (en) * 1990-08-31 1992-04-14 Isuzu Motors Ltd Electronic control type transmission
US5413012A (en) * 1993-09-07 1995-05-09 Eaton Corporation Variable synchronous window
US5425284A (en) * 1993-09-07 1995-06-20 Eaton Corporation Automated mechanical transmission control system/method
US5441463A (en) * 1993-10-28 1995-08-15 Eaton Corporation Selected speed ratio not-engaged range section recovery by shifting to a non-selected speed ratio and if permitted, shifting to the selected speed ratio
KR950017389A (en) * 1993-12-30 1995-07-20 전성원 Gear shifting abnormality judgment device of automatic transmission and method
FR2732276B1 (en) * 1995-04-03 1997-06-20 Magneti Marelli France ROBOTIC MECHANICAL GEARBOX SYSTEM
KR100500721B1 (en) 1996-03-14 2005-11-25 루크 게트리에베시스템 게엠베하 Vehicle and control method
US5685799A (en) * 1996-07-01 1997-11-11 General Motors Corporation Automatic transmission shift stabilization control
DE19630937C2 (en) * 1996-07-31 2000-05-25 Siemens Ag Method and circuit arrangement for gear detection in a transmission of a motor vehicle
US5974354A (en) * 1997-02-05 1999-10-26 Eaton Corporation Engagement of gear ratio confirmation
FR2764028B1 (en) 1997-05-28 2001-11-09 Mannesmann Sachs Ag POSITIONING DEVICE
DE19820577A1 (en) * 1997-05-28 1998-12-03 Mannesmann Sachs Ag Controller for automated actuation of motor vehicle transmission
JPH11201281A (en) * 1998-01-12 1999-07-27 Aichi Mach Ind Co Ltd Automatic transmission device of gear type transmission
US5974906A (en) * 1998-04-01 1999-11-02 Eaton Corporation Jaw clutch engagement control for assisted, manually shifted, splitter-type transmission system
US6095003A (en) * 1998-09-08 2000-08-01 Eaton Corporation Control for controller-assisted, manually shifted, synchronized, splitter type compound transmissions

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4796485A (en) * 1984-10-25 1989-01-10 Jidosha Kiki Co., Ltd. Remote control apparatus for transmission
US4766774A (en) * 1985-08-29 1988-08-30 Isuzu Motors Limited Shift control method and apparatus for automatic transmissions used in automotive vehicles
US5219391A (en) * 1991-12-06 1993-06-15 Eaton Corporation Transmission shifter having automatic adjustment of control parameters
US6227063B1 (en) * 1999-01-14 2001-05-08 Aisin Ai Co., Ltd. Automatically operated transmission and controlling method therefor
US6276224B1 (en) * 1999-05-25 2001-08-21 Aisin Ai Co., Ltd Shift control apparatus for transmission

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8335619B2 (en) 2007-05-25 2012-12-18 Toyota Jidosha Kabushiki Kaisha Shift switching device
US8825268B2 (en) 2007-05-25 2014-09-02 Toyota Jidosha Kabushiki Kaisha Shift switching device
WO2009115167A3 (en) * 2008-03-15 2009-12-03 Wabco Gmbh Transmission actuator
CN101946108A (en) * 2008-03-15 2011-01-12 威伯科有限公司 Transmission actuator
US20110041639A1 (en) * 2008-03-15 2011-02-24 Christian Brammer Transmission actuator
US8359942B2 (en) 2008-03-15 2013-01-29 Wabco Gmbh Transmission actuator
CN101946108B (en) * 2008-03-15 2013-11-06 威伯科有限公司 Transmission actuator
US20110202231A1 (en) * 2009-02-27 2011-08-18 Toyota Jidosha Kabushiki Kaisha Vehicle control device
US8914185B2 (en) 2009-02-27 2014-12-16 Toyota Jidosha Kabushiki Kaisha Vehicle control device
US8676460B2 (en) 2009-03-27 2014-03-18 Toyota Jidosha Kabushiki Kaisha Shift control device for vehicle

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US6561950B1 (en) 2003-05-13
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DE10036415A1 (en) 2001-11-08
KR100511846B1 (en) 2005-09-02

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