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Transient multi-physics analysis of a magnetorheological shock absorber with the inverse Jiles-Atherton hysteresis model

机译:逆Jiles-Atherton磁滞模型对磁流变减振器的瞬态多物理场分析

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This paper presents multi-physics modeling of an MR absorber considering the magnetic hysteresis to capture the nonlinear relationship between the applied current and the generated force under impact loading. The magnetic field, temperature field, and fluid dynamics are represented by the Maxwell equations, conjugate heat transfer equations, and Navier-Stokes equations. These fields are coupled through the apparent viscosity and the magnetic force, both of which in turn depend on the magnetic flux density and the temperature. Based on a parametric study, an inverse Jiles-Atherton hysteresis model is used and implemented for the magnetic field simulation. The temperature rise of the MR fluid in the annular gap caused by core loss (i.e. eddy current loss and hysteresis loss) and fluid motion is computed to investigate the current-force behavior. A group of impulsive tests was performed for the manufactured MR absorber with step exciting currents. The numerical and experimental results showed good agreement, which validates the effectiveness of the proposed multi-physics FEA model.
机译:本文提出了一种考虑磁滞现象的MR吸收器的多物理场模型,以捕获冲击载荷下施加电流与所产生力之间的非线性关系。磁场,温度场和流体动力学由麦克斯韦方程,共轭传热方程和纳维尔-斯托克斯方程表示。这些场通过表观粘度和磁力耦合,而这又取决于磁通密度和温度。在参数研究的基础上,使用逆Jiles-Atherton磁滞模型并将其实现用于磁场仿真。计算由磁芯损耗(即涡流损耗和磁滞损耗)和流体运动引起的环形间隙中MR流体的温度升高,以研究电流力行为。使用阶跃励磁电流对制造的MR吸收器进行了一组脉冲测试。数值结果与实验结果吻合良好,验证了所提出的多物理场有限元分析模型的有效性。

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