DOI: 10.1177/10775463261491316 ISSN: 1077-5463

Layered output-compensation-based hybrid model predictive ride height and damping force control for active air suspension system with model-plant mismatch

Pak Kin Wong, Jingyu Lu, Lemin Xu, Jing Zhao, Xiaozheng Wang

Ride height control (RHC) and damping force control (DFC) in active air suspension equipped with hydraulic adjustable damper (AAS-HAD) exhibit hybrid system behavior and cause coupling problems. To address these problems, this paper proposes a layered output-compensation-based hybrid model predictive control (OCH-MPC) strategy to achieve integrated control of RHC and DFC. First, the multi-mode switching behaviors and nonlinear dynamics of the AAS-HAD are analyzed. Then by using piecewise linear approximation and the mixed logical dynamical (MLD) method, a quarter-car AAS-HAD model is developed to capture its hybrid dynamic characteristics. To achieve integrated control of RHC and DFC while mitigating model-plant mismatch (MPM) caused by linearization, a layered OCH-MPC is designed. Finally, the proposed controller is validated through simulations and experimental tests. The results demonstrate that the layered OCH-MPC outperforms traditional methods in both height regulation accuracy and ride comfort improvement.