EP0339664A2

Method of operating an electronic automatic transmission system.

Abstract

The present invention is a method of controlling the overall operation of an automatic transmission with an electronic controller, by using signals indicating gear speed, shift lever position and engine throttle position, determining and controlling the torque converter conditions (lock-up mode, turbine speed and acceleration) and influencing the cycle time of the solenoid valves which control the hydraulically actuated friction elements that initiate the gear change.

EP0339664A2, drawing sheet 1
Sheet 1 of 109

Term

Term ended

Projected expiry passed 28 April 2009, 17.4 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

4 claims: 2 independent, 2 dependent

  1. 1
    In a vehicle having an engine and a transmission including an input member, a torque converter assembly for transmitting torque between the engine and the input member, an output member, a gear assembly for changing the ratio of torque between the input member and output member, a plurality of friction elements for shifting the gear assembly, a fluid actuating device being movable to engage and disengage at least one friction element, at least one solenoid-actuated valve being movable in response to the presence or absence of electrical power for injecting fluid-flow between the fluid source and the fluid actuation device; a plurality of input sensors providing input signals indicative of predetermined conditions; a controller having memory for processing and storing the input signals and predetermined values and providing output signals to control the actuation of the solenoid-actuated valve, a method of controlling a transmission for a vehicle, said method comprising the steps of:reading a sensor to determine the tooth count in a predetermined time period;calculating a speed based on the tooth count for the predetermined time period;reading the shift lever position of the driver-selected operating mode of the transmission;reading the position of the throttle in the engine of the vehicle;determining the gear the transmission should be operating in based on the calculated output speed and shift lever position and throttle position;comparing the determined gear to the gear the transmission is presently operating in to determine whether a gear change is required;identifying and executing the proper gear change if a gear change is required;determining whether a lock-up of the torque converter in the transmission is required;determining whether the torque converter is presently in lock-up if lock-up is scheduled;executing a predetermined mode of lock-up if the torque converter is not presently in lock-up;selecting a desired acceleration of the turbine in the torque converter;calculating the actual speed and acceleration of the turbine in the torque converter;executing the appropriate shift logic for the particular shift in progress;outputting the cycle time of the solenoid-actuated valves to control the friction elements for completing the gear change;and checking for shift completion requirements such as the gear ratio being equal to the destination ratio for a predetermined length of time.
  2. 2
    A method as set forth in Claim 1 wherein at the end of a shift, perform the necessary update of the "learned parameters" if pre-determined set of conditions are valid.
  3. 3
    A method as set forth in Claim 1 wherein if a shift is not complete, continuously monitoring a set of predetermined conditions, which if valid, abort the preset shift and start a new shift based on "change mind" analysis.
  4. 4
    In a vehicle having an engine and a transmission including an input member, a torque converter assembly for transmitting torque between the engine and the input member, an output member, a gear assembly for changing the ratio of torque between the input member and output member, a plurality of friction elements for shifting the gear assembly, a fluid actuating device being movable to engage and disengage at least one friction element, at least one solenoid-actuated valve being movable in response to the presence or absence of electrical power for injecting fluid-flow between the fluid source and the fluid actuation device; a plurality of input sensors providing input signals indicative of predetermined conditions; a controller having memory for processing and storing the input signals and predetermined values and providing output signals to control the actuation of the solenoid-actuated valve, a method of controlling a transmission for a vehicle, said method comprising the steps of:powering and initializing a controller;reading a sensor to determine the tooth count in a predetermined time period;calculating a speed based on the tooth count for the predetermined time period;reading the shift lever position of the driver-selected operating mode of the transmission;reading the position of the throttle in the engine of the vehicle;determining the gear the transmission should be operating in based on the calculated speed and shift lever position and throttle position;comparing the determined gear to the gear the transmission is presently operating in;executing predetermined monitoring routines to determine if any wires are shorted;determining whether a failure has occurred;determining whether a gear change is required;identifying and executing the proper gear change if a gear change is required;determining whether a lock-up of the torque converter in the transmission is required;determining whether the torque converter is presently in lock-up if lock-up is scheduled;executing a predetermined mode of lock-up if the torque converter is not presently in lock-up;determining the desired acceleration of the turbine in the torque converter;calculating the actual acceleration of the turbine in the torque converter;outputting the cycle time of the solenoid-actuated valves;and determining whether the gear change is complete.