IP Library › Granted Patent US 11,993,250
Granted Patent B2
US 11,993,250 · App. 17/371,194 · Granted May 28, 2024

Drive force control system for vehicle

Inventors: Tatsuya Imamura (Okazaki, JP); Yoichiro Isami (Mishima, JP); Yoshio Itou (Susono, JP); Hiroyuki Amano (Susono, JP); Akiko Nishimine (Susono, JP); Hiroaki Ebuchi (Hadano, JP); Hiroaki Kodera (Susono, JP)
Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
B60W20/30B60W10/06B60W10/08B60W10/111B60W20/15B60W2540/10B60W2540/14B60W2710/083B60W2710/105
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Quick Facts
Patent No.
US 11,993,250
App. No.
17/371,194
Granted
May 28, 2024
Kind
B2
Abstract

A drive force control system for a vehicle configured to accurately imitate a change in a drive force in a model vehicle. A drive torque simulator computes a virtual drive torque supposed to be delivered to drive wheels of the model vehicle in response to a manual operation to manipulate the vehicle, based on torque changing factors of a powertrain of the model vehicle. An actual torque calculator computes a target torque of a motor that is practically delivered to the drive wheels in the vehicle based on the virtual drive torque computed by the drive torque simulator, taking account of torque changing factors of the powertrain of the vehicle.

Claims (34)

1. A drive force control system for a vehicle that controls a drive force to propel the vehicle in which a first powertrain includes a motor as a prime mover and a power transmission device that transmits an output torque of the motor to a pair of drive wheels to imitate behaviors of a model vehicle in which a second powertrain includes an engine as a prime mover and a transmission that transmits an output torque of the engine to a pair of drive wheels, the drive force control system comprising:

a controller that controls the output torque of the motor,

wherein the controller comprises:

a drive torque simulator that models the behaviors of the model vehicle and is configured to compute a virtual drive torque corresponding to what would be delivered to the drive wheels of the model vehicle in response to a manual operation of a driver to manipulate the vehicle, based on at least one of torque changing factors including a second inertia moment, a second elastic coefficient, and/or a second attenuation coefficient of the second powertrain of the model vehicle; and

an actual torque calculator configured to compute a target torque of the motor that is practically delivered from the motor to the drive wheels in the vehicle based on the virtual drive torque computed by the drive torque simulator, taking account of at least one of torque changing factors including a first inertia moment, a first elastic coefficient, and a first attenuation coefficient of the first powertrain of the vehicle.

2. The drive force control system for the vehicle as claimed in claim 1 , wherein the transmission of the model vehicle includes an automatic transmission that changes a speed ratio between the engine and the drive wheels automatically.

3. The drive force control system for the vehicle as claimed in claim 1 , wherein the transmission of the model vehicle includes a manual transmission that changes a speed ratio between the engine and the drive wheels in response to a manual shifting operation.

4. The drive force control system for the vehicle as claimed in claim 3 ,

wherein the vehicle comprises a clutch pedal operated by the driver, and

the manual shifting operation includes an operation of the clutch pedal.

5. The drive force control system for the vehicle as claimed in claim 1 ,

wherein the controller further comprises a target torque simulator configured to compute a target value of a virtual torque to be generated by the engine of the model vehicle by operating an accelerator pedal of the vehicle, and

the drive torque simulator is further configured to compute the virtual drive torque to be delivered to the drive wheels of the model vehicle if the engine generates the virtual torque computed by the target torque simulator.

6. The drive force control system for the vehicle as claimed in claim 2 ,

wherein the controller further comprises a target torque simulator configured to compute a target value of a virtual torque to be generated by the engine of the model vehicle by operating an accelerator pedal of the vehicle, and

the drive torque simulator is further configured to compute the virtual drive torque to be delivered to the drive wheels of the model vehicle if the engine generates the virtual torque computed by the target torque simulator.

7. The drive force control system for the vehicle as claimed in claim 3 ,

wherein the controller further comprises a target torque simulator configured to compute a target value of a virtual torque to be generated by the engine of the model vehicle by operating an accelerator pedal of the vehicle, and

the drive torque simulator is further configured to compute the virtual drive torque to be delivered to the drive wheels of the model vehicle if the engine generates the virtual torque computed by the target torque simulator.

8. The drive force control system for the vehicle as claimed in claim 4 ,

wherein the controller further comprises a target torque simulator configured to compute a target value of a virtual torque to be generated by the engine of the model vehicle by operating an accelerator pedal of the vehicle, and

the drive torque simulator is further configured to compute the virtual drive torque to be delivered to the drive wheels of the model vehicle if the engine generates the virtual torque computed by the target torque simulator.

9. A drive force control system for a vehicle that controls a drive force to propel the vehicle in which a first powertrain includes an electric motor as a prime mover and a power transmission device that transmits an output torque of the electric motor to a pair of drive wheels to imitate behaviors of a model vehicle in which a second powertrain includes an engine as a prime mover and a transmission that transmits an output torque of the engine to a pair of drive wheels, the drive force control system comprising:

a microcomputer configured to

control the output torque of the electric motor,

compute a virtual drive torque using a virtual model of the behaviors of the model vehicle, the virtual drive torque corresponding to what would be delivered to the drive wheels of the model vehicle in response to a manual operation of a driver to manipulate the vehicle, based on at least one of torque changing factors including a second inertia moment, a second elastic coefficient, and/or a second attenuation coefficient of the second powertrain of the model vehicle;

compute a target torque of the electric motor that is practically delivered from the electric motor to the drive wheels in the vehicle based on the virtual drive torque computed taking account of at least one of torque changing factors including a first inertia moment, a first elastic coefficient, and a first attenuation coefficient of the first powertrain of the vehicle;

compute a target value of a virtual torque to be generated by the engine of the model vehicle by operating an accelerator pedal of the vehicle; and

compute the virtual drive torque to be delivered to the drive wheels of the model vehicle if the engine generates the virtual torque computed.

10. The drive force control system for the vehicle as claimed in claim 9 , wherein the transmission of the model vehicle includes an automatic transmission that changes a speed ratio between the engine and the drive wheels automatically.

11. The drive force control system for the vehicle as claimed in claim 9 , wherein the transmission of the model vehicle includes a manual transmission that changes a speed ratio between the engine and the drive wheels in response to a manual shifting operation.

12. The drive force control system for the vehicle as claimed in claim 11 ,

wherein the vehicle comprises a clutch pedal operated by the driver, and

the manual shifting operation includes an operation of the clutch pedal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2021
From: IMAMURA, TATSUYA; ISAMI, YOICHIRO; ITOU, YOSHIO; AMANO, HIROYUKI; NISHIMINE, AKIKO; EBUCHI, HIROAKI; KODERA, HIROAKI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 056798/0831 →
Priority Claims (1)
JP 2020-134342 · Aug 7, 2020 · national
Continuity (1)
Related Publication 20220041157A1 · Feb 10, 2022
Cited By (2)
US 12,263,831 US 12,522,200