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A new magnetorheological mount featured by changeable damping gaps using a moved-plate valve structure

机译:一种新的磁流变学安装座,其特征在于使用移动板式阀结构可改变阻尼间隙

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In this work, a new type of a magnetorheological (MR) fluid mount is proposed and its performances are experimentally investigated. The design of this MR mount is based on two operating modes of MR fluid: flow mode and shear mode. These modes are applied to the mechanism design consisting of two components: a fixed plate for applying the flow mode, and a moved plate for applying the shear mode of MR fluid motion. These plates belong to the valve-type structure of MR mount. The primary objective using the moved plate is to overcome the block-up phenomenon which frequently occurs in the conventional-type MR mount, in which there is no flow of MR fluid through the damping gap. In this research, a laboratorial fluid (MRF140) is used in the design and optimization of MR mount. This fluid features plate-like particles unlike the sphere particles. The yield stress of the fluid is measured as a function of the magnetic field and the theoretical analysis for the mount design is undertaken using the properties of the MR fluid, followed by design optimization. The objective function is concentrated on maximal damping force of the MR mount subjected to parameter constraints. Based on the results of optimization, the proposed MR mount is manufactured and tested for the performance evaluation. Vibration control capability and block-up phenomenon are investigated and compared between the proposed and conventional MR mounts.
机译:在这项工作中,提出了一种新型的磁流变(MR)流体支架,并对其性能进行了实验研究。该MR支架的设计基于MR流体的两种运行模式:流动模式和剪切模式。这些模式应用于由两个部分组成的机械设计:用于施加流动模式的固定板和用于施加MR流体运动的剪切模式的移动板。这些板属于MR安装座的阀式结构。使用移动的板的主要目的是克服在常规类型的MR安装座中经常发生的阻塞现象,在阻塞现象中,没有MR流体流过阻尼间隙。在这项研究中,实验室流体(MRF140)用于MR支架的设计和优化。与球形颗粒不同,这种流体的特征是板状颗粒。测量流体的屈服应力与磁场的关系,并使用MR流体的特性进行底座设计的理论分析,然后进行设计优化。目标函数集中在受参数约束的MR支架的最大阻尼力上。根据优化结果,制造并测试了建议的MR支架,以进行性能评估。对振动控制能力和阻塞现象进行了研究,并将其与建议的和常规的MR安装座进行了比较。

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