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An innovative multi-gap clutch based on magneto-rheological fluids and electrodynamic effects: magnetic design and experimental characterization

机译:一种基于磁流变液和电动效应的创新多间隙离合器:磁性设计与实验表征

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摘要

In this paper an innovative multi-gap magnetorheological clutch is described. It is inspired by a device previously developed by the author's research group and contains a novel solution based on electrodynamic effects, capable to considerably improve the transmissible torque during the engagement phase. Since this (transient) phase is characterized by a non-zero angular speed between the two clutch shafts, the rotation of a permanent magnets system, used to excite the fluid, induces eddy currents on some conductive material strategically positioned in the device. As a consequence, an electromagnetic torque is produced which is added to the torque transmitted by the magnetorheological fluid only. Once the clutch is completely engaged and the relative speed between the two shafts is zero, the electrodynamic effects vanish and the device operates like a conventional magnetorheological clutch. The system is investigated and designed by means a 3D FEM model and the performance of the device is experimentally validated on a prototype.
机译:本文描述了一种创新的多间隙磁流变离合器。它受到先前由作者的研究组开发的设备的启发,并包含一种基于电动效应的新型解决方案,能够在接合阶段期间能够大大改善传动扭矩。由于该(瞬态)相位的特征在于两个离合器轴之间的非零角速度,所以用于激发流体的永磁体系的旋转在策略性地定位在装置中的一些导电材料上引起涡流。结果,产生电磁扭矩,该电磁扭矩仅添加到由磁流变流体透射的扭矩。一旦离合器完全接合并且两个轴之间的相对速度为零,就会消失电动力学效果并且设备类似于传统的磁流变离合器。通过表示3D FEM模型来研究和设计系统,并且设备的性能在原型上进行实验验证。

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