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Design and experimental study of the porous foam metal magnetorheological fluid damper based on built-in multi-pole magnetic core

机译:基于内置多极磁芯的多孔泡沫金属磁流变液阻尼器的设计与试验研究

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摘要

The porous foam metal magnetorheological fluid damper has a broad application prospect in the field of vibration isolation of precision instruments with small damping force because it does not need complex dynamic seal structure. The traditional single-ring magnetic pole porous foam metal magnetorheological fluid damper has a small effective area for the magnetic core that affects the damper output range due to the geometric constraints of the coil and the low magnetic field utilization. Therefore, in order to increase the effective area ratio of the magnetic core, this article introduces the built-in multi-pole magnetic core into the porous metal magnetorheological fluid damper and integrates four axial wound fan-shaped magnetic poles on the magnetic core to improve the output performance of the damper. The magnetic circuit is analyzed based on Ohm's law of magnetic circuit, and the mathematical model of damping force is established. Based on this, the important geometric parameters of the damper are determined. The finite element method is used to simulate the magnetic field of the damper, and the output performance of the damper is numerically simulated. The dynamic performance test system of the damper is set up to test the designed damper, and the test data and numerical simulation results are verified with each other. The results show that the damping force peak and dynamic regulation range of the damper designed in this article are higher than those of the traditional porous foam metal magnetorheological fluid damper with magnetic core, which effectively improves the mechanical properties of the magnetorheological fluid damper with porous foam metal.
机译:多孔泡沫金属磁流变液阻尼器由于不需要复杂的动态密封结构,在阻尼力小的精密仪器的隔振领域具有广阔的应用前景。传统的单环磁极多孔泡沫金属磁流变液阻尼器的磁芯有效面积很小,由于线圈的几何约束和低磁场利用率而影响阻尼器的输出范围。因此,为了提高磁芯的有效面积比,本文将内置的多极磁芯引入到多孔金属磁流变液阻尼器中,并在磁芯上集成了四个轴向缠绕的扇形磁极,以改善磁芯的有效面积比。阻尼器的输出性能。根据磁路欧姆定律对磁路进行了分析,建立了阻尼力的数学模型。基于此,确定阻尼器的重要几何参数。采用有限元方法对阻尼器的磁场进行仿真,并对阻尼器的输出性能进行数值模拟。建立了减振器动态性能测试系统,对设计的减振器进行了测试,并对测试数据和数值模拟结果进行了验证。结果表明,本文设计的阻尼器的阻尼力峰值和动态调节范围均高于传统的带磁芯的多孔泡沫金属磁流变流体阻尼器,有效改善了多孔泡沫磁流变流体阻尼器的力学性能。金属。

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