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Design and control of electronic control suspension using a magneto-rheological shock absorber

机译:使用磁流变减震器的电子控制悬架的设计和控制

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摘要

This paper investigates the design and control of electronic control suspension (ECS) equipped with a controllable magneto-rheological (MR) shock absorber and appropriate control strategy. In order to achieve this goal, a cylindrical-type MR fluid shock absorber which satisfies the design specification for Macpherson strut-type suspension for a middle-sized commercial passenger vehicle is designed using an optimization methodology. After experimentally evaluating the field-dependent characteristics of the manufactured MR shock absorber, a quarter-vehicle MR ECS system, consisting of sprung mass, spring, tyre, controller, and the MR shock absorber, is established in order to investigate the ride comfort and driving stability performance. On the basis of the governing equation of motion of the suspension system, five control strategies (soft, hard, comfort, sport, and optimal mode) are formulated. The proposed control strategies are then experimentally realized with the quarter-vehicle MR ECS system. Control performances such as vertical acceleration of the car body and tyre deflection are evaluated in both time and frequency domains under various road conditions. In addition, a comparative study of vehicle motion with a full-vehicle MR ECS system is undertaken to investigate inherent control characteristics, using computer simulation.
机译:本文研究了配备可控磁流变(MR)减震器的电子控制悬架(ECS)的设计和控制以及适当的控制策略。为了实现该目标,使用优化方法来设计满足用于中型商用乘用车的麦克弗森支杆式悬架的设计规范的圆柱形MR流体减震器。通过实验评估所制造的MR减震器的取决于现场的特性之后,建立了四分之一车的MR ECS系统,该系统由弹簧质量,弹簧,轮胎,控制器和MR减震器组成,以研究乘坐舒适性和行驶稳定性能。根据悬架系统的运动控制方程,制定了五种控制策略(软,硬,舒适,运动和最佳模式)。然后,用四分之一车辆MR ECS系统通过实验实现所提出的控制策略。在各种路况下,都可以在时域和频域中评估控制性能,例如车身的垂直加速度和轮胎变形。此外,利用计算机仿真对整车MR ECS系统进行的车辆运动进行了比较研究,以研究固有的控制特性。

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