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Geometric Optimization of Controllable Magnetorheological Shock Absorber for Commercial Passenger Vehicle

机译:商用客车可控磁流变减震器的几何优化

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This paper presents optimal design of a controllable magnetorheological (MR) shock absorber for a passenger vehicle and shows several advantages of the optimized MR shock absorber on vibration control performance. In order to achieve this goal, a cylindrical MR shock absorber, which satisfies design specifications for a mid-sized commercial passenger vehicle, is designed using an optimization methodology. The optimization problem is to find optimal geometric dimensions of the magnetic circuit for the MR shock absorber in order to maximize damping force. The first order optimization method using commercial finite element method (FEM) software is adopted for the constrained optimization algorithm. After manufacturing the MR shock absorber with optimally obtained design parameters, its field-dependent characteristics are experimentally evaluated. The effect of the optimized MR shock absorber on suspension control is investigated using a quarter-vehicle system. Control performances such as vertical acceleration and power consumption are evaluated and compared between the initial and optimal shock absorbers.
机译:本文介绍了一种用于乘用车的可控磁流变(MR)减震器的优化设计,并展示了优化的MR减震器在振动控制性能上的几个优点。为了实现该目标,使用优化方法设计了满足中型商用乘用车设计规格的圆柱形MR减震器。优化问题是找到用于MR减震器的磁路的最佳几何尺寸,以使阻尼力最大化。约束优化算法采用了采用商业有限元软件的一阶优化方法。在制造出具有最佳设计参数的MR减震器之后,将通过实验评估其与磁场有关的特性。使用四分之一车辆系统研究了优化的MR减震器对悬架控制的影响。评估控制性能,例如垂直加速度和功耗,并在初始减震器和最佳减震器之间进行比较。

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