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Optimal control and parameters design for the fractional-order vehicle suspension system

机译:分数级车辆悬架系统的最优控制和参数设计

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In this paper the optimal control and parameters design of fractional-order vehicle suspension system are researched, where the system is described by fractional-order differential equation. The linear quadratic optimal state regulator is designed based on optimal control theory, which is applied to get the optimal control force of the active fractional-order suspension system. A stiffness-damping system is added to the passive fractional-order suspension system. Based on the criteria, i.e. the force arising from the accessional stiffness-damping system should be as close as possible to the optimal control force of the active fractional-order suspension system, the parameters of the optimized passive fractional-order suspension system are obtained by least square algorithm. An Oustaloup filter algorithm is adopted to simulate the fractional-order derivatives. Then, the simulation models of the three kinds of fractional-order suspension systems are developed respectively. The simulation results indicate that the active and optimized passive fractional-order suspension systems both reduce the value of vehicle body vertical acceleration and improve the ride comfort compared with the passive fractional-order suspension system, whenever the vehicle is running on a sinusoidal surface or random surface.
机译:在本文中,研究了分数级车辆悬架系统的最佳控制和参数设计,其中系统由分数级微分方程描述。基于最优控制理论设计的线性二次最佳状态调节器,其应用于获得有源分数级悬架系统的最佳控制力。将刚度阻尼系统添加到无源分数级悬架系统中。基于标准,即从载入刚度阻尼系统产生的力应该尽可能接近有源分数级悬架系统的最佳控制力,所以通过的优化无源分数悬架系统的参数最小二乘算法。采用突发滤波器算法模拟分数阶衍生物。然后,分别开发了三种分数级悬架系统的仿真模型。仿真结果表明,随着车辆在正弦表面或随机的情况下,无源和优化的无源分数悬架系统均降低车身垂直加速度的值,并提高乘坐舒适性。表面。

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