B60W2510/102

SYSTEMS AND METHODS FOR OPERATING A HYBRID VEHICLE WITH A MANUAL SHIFT TRANSMISSION
20190367009 · 2019-12-05 ·

Systems and methods for operating a vehicle that includes a manual transmission are presented. In one example, a speed rate of change of a driveline torque source is adjusted during shifting gears of the manual transmission responsive to a rate of release of a clutch pedal. The driveline torque source rotational speed adjustment aligns rotational speeds of driveline components.

Vehicle transmission device

A clutch disengagement position is detectable with high precision even during speed change. A vehicle transmission device can include a transmission including a main shaft to which rotational power from an engine is inputted via a clutch, and a countershaft, a clutch operation member that is driven by an actuator and performs disengaging and engaging operations of the clutch, and a driving wheel to which rotational power of the countershaft is transmitted via a driving force transmitting device. A damper member deformed by a driving force is provided in the countershaft, the driving force transmitting device or the driving wheel, or among the countershaft, the driving force transmitting device and the driving wheel. A control device learns a clutch disengagement operation amount when the control device detects deceleration of a predetermined value of the rotational frequency of the main shaft.

System, method, and apparatus for operating a high efficiency, high output transmission

A transmission includes an input shaft and an output shaft, the input shaft selectively accepting a torque input from a prime mover, and the output shaft selectively providing torque output to a driveline. A controller determines a shaft displacement angle representing an angle value of rotational displacement difference between at least two shafts of the transmission, and performs a transmission operation responsive to the shaft displacement angle.

Powertrain With Anti-Shuffle Control

Powertrains may include a spring damper between the engine crankshaft and transmission input shaft. In some circumstances, an oscillation known as shuffle may occur in such powertrains. Active adjustment of engine torque is substantially more effective at mitigating shuffle oscillations if the engine torque includes a p-term proportional to displacement of the damper spring in addition to a d-term proportional to the speed difference across the damper. For various reasons, the spring displacement is difficult to measure directly. An observer algorithm is utilized to calculate a current estimated spring displacement based on a crankshaft speed sensor, a transmission input speed sensor, a wheel speed sensor, and past engine torques, using a dynamic model of the powertrain.

Method for controlling gear shifting of hybrid electric vehicle

A method for controlling gear shifting of a hybrid electric vehicle, which is configured for reducing gear-shifting time, minimizing loss by a drive system, improving fuel efficiency and enhancing drivability and which enables a driver to feel a change in acceleration when the driver manipulates the accelerator pedal during power-on upshift active control operation may include speed control of the driving source of the vehicle based on a change rate of a transmission input speed and feedforward control of the clutch of the engagement element in the transmission, to which a driver requested torque is reflected, which are performed at the same time during power-on upshift active control operation, facilitating the driver to feel a change in acceleration which is produced by his or her driving manipulation.

CONTROL OF A POWERTRAIN BACKLASH
20190128345 · 2019-05-02 · ·

A method and a system for controlling a backlash of a powertrain included in a vehicle in connection with a gear shifting operation is presented. The method comprises: controlling, in connection with a first gear shifting operation, a clutch included in the powertrain to a slipping position, in which slipping position the clutch transfers a slipping torque that is less than a torque being transferred in a closed position for the clutch; analyzing a change of a rotational speed for an input shaft of a gearbox included in the powertrain; determining a position for the clutch, for which position the change of the rotational speed has a value corresponding to a backlash torque, the backlash torque having a predetermined value for eliminating the backlash; and utilizing the determined clutch position for controlling the clutch in connection with a second subsequent gear shifting operation.

System and method for preventing clutch burst

A control system for a vehicle having a manual transmission system includes an anti-lock braking system configured to apply brakes of the vehicle, a clutch pedal configured to control engagement/disengagement of a clutch disc with a pressure plate of the manual transmission system, and a controller configured to perform a clutch burst prevention technique when the clutch pedal is depressed such that the clutch disc is disengaged from the pressure plate, the clutch burst prevention technique comprising: obtaining a set of operating parameters of the vehicle, determining a vehicle speed threshold based on the set of operating parameters, the vehicle speed threshold being a speed of the vehicle at which clutch burst begins to occur, and when the vehicle speed is within a first threshold amount from the vehicle speed threshold, decreasing the vehicle speed by commanding the anti-lock braking system to apply the vehicle brakes.

METHOD FOR CONTROLLING GEAR SHIFTING OF HYBRID ELECTRIC VEHICLE

A method for controlling gear shifting of a hybrid electric vehicle, which is configured for reducing gear-shifting time, minimizing loss by a drive system, improving fuel efficiency and enhancing drivability and which enables a driver to feel a change in acceleration when the driver manipulates the accelerator pedal during power-on upshift active control operation may include speed control of the driving source of the vehicle based on a change rate of a transmission input speed and feedforward control of the clutch of the engagement element in the transmission, to which a driver requested torque is reflected, which are performed at the same time during power-on upshift active control operation, facilitating the driver to feel a change in acceleration which is produced by his or her driving manipulation.

SYSTEM AND METHOD FOR PREVENTING CLUTCH BURST

A control system for a vehicle having a manual transmission system includes an anti-lock braking system configured to apply brakes of the vehicle, a clutch pedal configured to control engagement/disengagement of a clutch disc with a pressure plate of the manual transmission system, and a controller configured to perform a clutch burst prevention technique when the clutch pedal is depressed such that the clutch disc is disengaged from the pressure plate, the clutch burst prevention technique comprising: obtaining a set of operating parameters of the vehicle, determining a vehicle speed threshold based on the set of operating parameters, the vehicle speed threshold being a speed of the vehicle at which clutch burst begins to occur, and when the vehicle speed is within a first threshold amount from the vehicle speed threshold, decreasing the vehicle speed by commanding the anti-lock braking system to apply the vehicle brakes.

Method of controlling launch of vehicle
10093318 · 2018-10-09 · ·

A method of controlling launch of a vehicle, may include setting step in which a controller sets a basic target engine speed; a transient control step in which the controller controls a clutch torque based on the basic target engine speed; a transient state determining step in which the controller determines, whether a transition period of change of the engine speed elapsed; a first correction amount determination step in which the controller determines a correction amount; a correction applying step in which the controller adds the correction amount to the predetermined target engine speed and then determines a final target engine speed; an error determination step in which the controller determines the engine speed control error; and a feedback determination step in which the controller uses the engine speed control error and determines a feedback control amount for feedback-controlling a clutch actuator.