TY - JOUR
T1 - Performance-guaranteed adaptive fault-tolerant control for electro-hydraulic brake system with actuator and sensor faults
AU - Wu, Wenjie
AU - Wang, Shaoping
AU - Mu, Rui
AU - Zhang, Yuwei
AU - Wang, Xingjian
AU - Chen, Rentong
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature B.V. 2026.
PY - 2026/5
Y1 - 2026/5
N2 - Electro-hydraulic braking (EHB) systems are safety-critical subsystems in intelligent and electrified vehicles, where actuator and sensor faults can significantly degrade braking performance and pose serious safety risks. To address such problem, this paper proposes a novel fault-tolerant control framework for EHB system. First, the orifice flow principle and Takagi–Sugeno fuzzy modeling techniques are applied to construct an EHB dynamic model with dual faults. Then, by integrating adaptive laws with H∞ robustness theory, a dual-fault adaptive observer is developed to simultaneously estimate system states and reconstruct actuator and sensor fault in the presence of uncertainties and disturbances. On this basis, a prescribed performance control strategy is designed by barrier Lyapunov functions, to guarantee that the braking pressure tracking behavior meets the predefined transient and steady-state performance constraints. Simulation results under both slowly varying and suddenly fault scenarios demonstrate that the proposed method achieves effective fault estimation and satisfactory pressure tracking performance. Comparative results further confirm significant improvements in robustness and fault-tolerance capabilities of the proposed method over other existing ones.
AB - Electro-hydraulic braking (EHB) systems are safety-critical subsystems in intelligent and electrified vehicles, where actuator and sensor faults can significantly degrade braking performance and pose serious safety risks. To address such problem, this paper proposes a novel fault-tolerant control framework for EHB system. First, the orifice flow principle and Takagi–Sugeno fuzzy modeling techniques are applied to construct an EHB dynamic model with dual faults. Then, by integrating adaptive laws with H∞ robustness theory, a dual-fault adaptive observer is developed to simultaneously estimate system states and reconstruct actuator and sensor fault in the presence of uncertainties and disturbances. On this basis, a prescribed performance control strategy is designed by barrier Lyapunov functions, to guarantee that the braking pressure tracking behavior meets the predefined transient and steady-state performance constraints. Simulation results under both slowly varying and suddenly fault scenarios demonstrate that the proposed method achieves effective fault estimation and satisfactory pressure tracking performance. Comparative results further confirm significant improvements in robustness and fault-tolerance capabilities of the proposed method over other existing ones.
KW - Adaptive fault observer
KW - Electro-hydraulic braking system
KW - Fault-tolerant control
KW - Prescribed performance control
UR - https://www.scopus.com/pages/publications/105039265375
U2 - 10.1007/s11071-026-12580-y
DO - 10.1007/s11071-026-12580-y
M3 - 文章
AN - SCOPUS:105039265375
SN - 0924-090X
VL - 114
JO - Nonlinear Dynamics
JF - Nonlinear Dynamics
IS - 10
M1 - 702
ER -