TY - JOUR
T1 - Hierarchical Hybrid Steering Control for Four-Wheel-Steering Vehicles Considering System Delays
AU - Zhang, Lei
AU - Yin, Xiaoxuan
AU - Wang, Zhenpo
AU - Sun, Fengchun
AU - Ding, Xiaolin
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2025
Y1 - 2025
N2 - This paper proposes a hierarchical hybrid steering control scheme for four-wheel-steering vehicles to deal with steer-by-wire system time delays and vehicle nonlinear characteristics. First, a variable steering ratio is developed considering the influence of the front and rear wheels' angles on the vehicle's steering characteristic. Then a hybrid feedforward controller combining with steady-state control, dynamic compensation, and oblique steering compensation is established to enhance vehicle dynamics stability in extreme driving conditions, taking into account the reference yaw rate and road adhesion constraints. Meanwhile, an adaptive linear quadratic regulator-based feedback controller with a piece-wise affine tire model is put forward to account for the influence of vertical load, road adhesion condition, and yaw rate tracking error. The controller adopts an adaptive weighting coefficient mechanism to satisfy various working conditions based on different steady-state gains of the front and rear wheel angles over the yaw rate. Finally, the effectiveness of the proposed scheme is experimentally verified under comprehensive testing scenarios through Hardware-in-the-Loop tests. The results show that the proposed scheme has superior performance relative to the state-of-the-art methods.
AB - This paper proposes a hierarchical hybrid steering control scheme for four-wheel-steering vehicles to deal with steer-by-wire system time delays and vehicle nonlinear characteristics. First, a variable steering ratio is developed considering the influence of the front and rear wheels' angles on the vehicle's steering characteristic. Then a hybrid feedforward controller combining with steady-state control, dynamic compensation, and oblique steering compensation is established to enhance vehicle dynamics stability in extreme driving conditions, taking into account the reference yaw rate and road adhesion constraints. Meanwhile, an adaptive linear quadratic regulator-based feedback controller with a piece-wise affine tire model is put forward to account for the influence of vertical load, road adhesion condition, and yaw rate tracking error. The controller adopts an adaptive weighting coefficient mechanism to satisfy various working conditions based on different steady-state gains of the front and rear wheel angles over the yaw rate. Finally, the effectiveness of the proposed scheme is experimentally verified under comprehensive testing scenarios through Hardware-in-the-Loop tests. The results show that the proposed scheme has superior performance relative to the state-of-the-art methods.
KW - Adaptive LQR feedback control
KW - actuator time delay
KW - four-wheel-steering vehicles
KW - hybrid feedforward control
KW - steering control
UR - http://www.scopus.com/pages/publications/85207342229
U2 - 10.1109/TVT.2024.3473305
DO - 10.1109/TVT.2024.3473305
M3 - Article
AN - SCOPUS:85207342229
SN - 0018-9545
VL - 74
SP - 2667
EP - 2681
JO - IEEE Transactions on Vehicular Technology
JF - IEEE Transactions on Vehicular Technology
IS - 2
ER -