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Design of a stiffness variable flexible coupling using magnetorheological elastomer for torsional vibration reduction

机译:使用磁流变弹性体降低扭转振动的刚度可变挠性联轴器的设计

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In this study, the design of an magnetorheological elastomer flexible coupling whose torsional stiffness can be controlled by an embedded magnetic field generator is proposed. It is designed to minimize the torsional vibration transmission between shafts adaptively to the dynamic disturbance. The coupling insert is composed of magnetorheological elastomer which is a smart material whose stiffness can be controlled by an external magnetic field. This article also proposes a compact magnetic field generator which can be fitted inside the coupling hubs, to control the torsional stiffness of the magnetorheological elastomer. The finite element method was used to design and estimate the dynamic stiffness variation of the magnetorheological elastomer coupling due to the applied magnetic field and disturbance frequency. Also, torsional vibration experiments were conducted to validate the performance of the proposed magnetorheological elastomer coupling. Results showed that it can adaptively tune in a range of frequencies between 16.8 and 23.5 Hz and has 95.7% stiffness variation under magnetic field of 150mT. The proposed system is expected to achieve a higher MRE effect with a softer base matrix.
机译:在这项研究中,提出了一种磁流变弹性体挠性联轴器的设计,该挠性联轴器的扭转刚度可以由嵌入式磁场发生器控制。它旨在最大限度地减小轴之间的扭转振动传递,以适应动态干扰。联轴器插件由磁流变弹性体组成,磁流变弹性体是一种智能材料,其刚度可以通过外部磁场控制。本文还提出了一种紧凑的磁场发生器,可以将其安装在耦合轮毂内部,以控制磁流变弹性体的扭转刚度。有限元方法被用来设计和估计由于施加的磁场和干扰频率而引起的磁流变弹性体耦合的动态刚度变化。此外,进行了扭转振动实验,以验证所提出的磁流变弹性体联轴器的性能。结果表明,它可以在16.8至23.5 Hz的频率范围内进行自适应调谐,并且在150mT的磁场下具有95.7%的刚度变化。预期所提出的系统将以较软的基本矩阵实现更高的MRE效果。

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