Abstract
To address the challenge of efficient actuator coordination in all-wheel steering and driving vehicles, this paper proposes a global coordinated control framework based on tire slip state assessment. First, a hybrid feedforward control method comprising steady-state control, dynamic compensation, and oblique steering compensation is proposed to respond rapidly to the driver's demands under various driving conditions. Then, considering different steering modes of four-wheel steering vehicles, a driver intention interpretation method that integrates conventional steering and oblique steering is developed. Subsequently, a sliding mode control algorithm is utilized to track the driver's desired motion states, improving the vehicle's robustness against system disturbances. Moreover, taking lateral acceleration and yaw rate as inputs, a coordinated strategy for the four-wheel steering angles and driving torques is established based on tire slip state assessment. Finally, hardware-in-the-loop test results show that, compared to the model predictive control (MPC) algorithm, the proposed control scheme increases the maximum speed in double lane-change maneuvers by 13%, significantly improving the vehicle handling performance under different driving conditions.
| Original language | English |
|---|---|
| Article number | 100427 |
| Journal | Green Energy and Intelligent Transportation |
| Volume | 5 |
| Issue number | 5 |
| DOIs | |
| Publication status | Published - Oct 2026 |
| Externally published | Yes |
Keywords
- Chassis coordinated control
- Driver intention interpretation
- Four-wheel-steering and four-wheel-driving vehicles
- Tire slip state assessment
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