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Explicit model predictive control of semi-active suspension systems with magneto-rheological dampers subject to input constraints

机译:磁流变阻尼器的半主动悬架系统的显式模型预测控制受输入约束的影响

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This article presents vibration control of a semi-active quarter-car suspension system equipped with a magneto-rheological damper that provides the physical constraint of a damping force. In this study, model predictive control was designed to handle the constraints of control input (i.e. the limited damping force). The explicit solution of model predictive control was computed using multi-parametric programming to reduce the computational time for real-time implementation and then adopted in the semi-active suspension system. The control performance of model predictive control was compared with that of a clipped linear-quadratic optimal controller, where the damping force was bound using a standard saturation function. Two types of road conditions (bump and random excitation) were applied to the suspension system, and the vibration control performance was evaluated through both simulations and experiments.
机译:本文介绍了配备有磁流变阻尼器的半主动四分之一汽车悬架系统的振动控制,该阻尼器提供阻尼力的物理限制。在本研究中,模型预测控制被设计为处理控制输入的约束(即限制阻尼力)。使用多参数编程计算模型预测控制的显式解决方案,以减少实时实现的计算时间,然后在半主动悬架系统中采用。模型预测控制的控制性能与剪切线性二次最佳控制器的控制性能,其中使用标准饱和函数粘合阻尼力。将两种类型的道路状况(凸起和随机激发)应用于悬架系统,通过模拟和实验评估振动控制性能。

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