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Model predictive control of an air suspension system with damping multi-mode switching damper based on hybrid model

机译:基于混合模型的带阻尼多模式切换风门的空气悬架系统的模型预测控制

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摘要

This paper presents the hybrid modeling and the model predictive control of an air suspension system with damping multi-mode switching damper. Unlike traditional damper with continuously adjustable damping, in this study, a new damper with four discrete damping modes is applied to vehicle semi-active air suspension. The new damper can achieve different damping modes by just controlling the on-off statuses of two solenoid valves, which makes its damping adjustment more efficient and more reliable. However, since the damping mode switching induces different modes of operation, the air suspension system with the new damper poses challenging hybrid control problem. To model both the continuous/ discrete dynamics and the switching between different damping modes, the framework of mixed logical dynamical (MLD) systems is used to establish the system hybrid model. Based on the resulting hybrid dynamical model, the system control problem is recast as a model predictive control (MPC) problem, which allows us to optimize the switching sequences of the damping modes by taking into account the suspension performance requirements. Numerical simulations results demonstrate the efficacy of the proposed control method finally.
机译:本文提出了带有阻尼多模式切换风门的空气悬架系统的混合建模和模型预测控制。与具有连续可调阻尼的传统阻尼器不同,本研究将具有四个离散阻尼模式的新型阻尼器应用于车辆半主动空气悬架。通过仅控制两个电磁阀的开关状态,新的阻尼器可以实现不同的阻尼模式,这使其阻尼调节更加有效和可靠。然而,由于阻尼模式切换引起不同的操作模式,所以具有新阻尼器的空气悬架系统提出了具有挑战性的混合控制问题。为了对连续/离散动力学以及不同阻尼模式之间的切换进行建模,使用混合逻辑动力学(MLD)系统的框架来建立系统混合模型。基于生成的混合动力模型,将系统控制问题重铸为模型预测控制(MPC)问题,这使我们能够通过考虑悬架性能要求来优化阻尼模式的切换顺序。数值仿真结果最终证明了该控制方法的有效性。

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