Vehicle Dynamics Control of eAWD Hybrid Electric Vehicle Using Slip Ratio Optimization and Allocation

Author:

Alcantar Jose Velazquez1,Assadian Francis2,Kuang Ming1

Affiliation:

1. Mem. ASME Advanced Research and Engineering, Ford Motor Company, Dearborn, MI 48124 e-mail:

2. Professor Mem. ASME Department of Mechanical and Aerospace Engineering, University of California, Davis, Davis, CA 95616 e-mail:

Abstract

Hybrid electric vehicles (HEV) offer improved fuel efficiency compared to their conventional counterparts at the expense of adding complexity and at times, reduced total power. As a result, HEV generally lack the dynamic performance that customers enjoy. To address this issue, the paper presents a HEV with electric all-wheel drive (eAWD) capabilities via the use of a torque vectoring electric rear axle drive (TVeRAD) unit to power the rear axle. The addition of TVeRAD to a front wheel drive HEV improves the total power output. To further improve the handling characteristics of the vehicle, the TVeRAD unit allows for wheel torque vectoring (TV) at the rear axle. A bond graph model of the proposed drivetrain model is developed and used in cosimulation with carsim. The paper proposes a control system, which utilizes slip ratio optimization to allocate control to each tire. The optimization algorithm is used to obtain optimal slip ratio targets to at each tire such that the targets avoid tire saturation. The Youla parameterization technique is used to develop robust tracking controllers for each axle. The proposed control system is ultimately tested on the drivetrain model with a high fidelity carsim vehicle model for validation. Simulation results show that the control system is able to maximize vehicle longitudinal performance while avoiding tire saturation on a low μ surface. More importantly, the control system is able to track the desired yaw moment request on a high-speed double-lane change (DLC) maneuver through the use of the TVeRAD to improve the handling characteristic of the vehicle.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference15 articles.

1. Hybrid Electric Vehicle Energy Management Using Game Theory,2008

2. Hancock, M., and Assadian, F., 2006, “Impact of Regenerative Braking on Vehicle Stability,” The Institution of Engineering and Technology Hybrid Vehicle Conference, Coventry, UK, Dec. 12–13, pp. 173–184.http://ieeexplore.ieee.org/document/4077342/

3. A Robust Stability Control System for a Hybrid Electric Vehicle Equipped With Electric Rear Axle Drive;SAE Int. J. Passenger Cars-Mech. Syst.,2016

4. Velazquez Alcantar, J., Assadian, F., Kuang, M., and Tseng, E., 2016, “Optimal Longitudinal Slip Ratio Allocation and Control of a Hybrid Electric Vehicle With eAWD Capabilities,” ASME Paper No. DSCC2016-9629. 10.1115/DSCC2016-9629

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