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A design methodology for a magnetorheological fluid damper based on a multi-stage radial flow mode

机译:基于多级径向流模式的磁流变流体阻尼器设计方法

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In this paper, a magnetorheological (MR) fluid damper based on a multi-stage radial flow mode is put forward, compared with traditional ones with annular damping channel which are of low magnetic field utilization and high energy consumption. The equivalent magnetic circuit model is derived, along with the relation between the magnetic induction at the working gap and the exciting current in the field coils. The finite-element software ANYSY is used to analyze the distribution of the magnetic field in the MR valve. The flow differential equation for a MR fluid in radial flow is theoretically set up, and the numerical solution is validated by means of the Herschel-Bulkley constitutive model. A MR damper was designed and fabricated in Chongqing University in accordance with the technical requirements of a railway vehicle anti-yaw damper, and the force-displacement characteristic of the damper was tested with J95-I type shock absorber test-bed. The results show that the experimental damping forces are in good agreement with the analytical ones, and the methodology is believed to help predict the damping force of a MR damper.
机译:提出了一种基于多级径向流模式的磁流变(MR)流体阻尼器,与传统的具有环形阻尼通道,磁场利用率低,能耗高的阻尼器相比。推导出等效磁路模型,以及工作间隙处的磁感应与励磁线圈中励磁电流之间的关系。使用有限元软件ANYSY分析MR阀中的磁场分布。理论上建立了MR流体在径向流中的流动微分方程,并通过Herschel-Bulkley本构模型对数值解进行了验证。根据铁路车辆偏航阻尼器的技术要求,在重庆大学设计制造了MR阻尼器,并用J95-I型减震器试验台对阻尼器的力-位移特性进行了测试。结果表明,实验阻尼力与解析力吻合良好,该方法被认为有助于预测MR阻尼器的阻尼力。

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