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The influence of magnetic hysteresis on magnetorheological fluid clutch operation

机译:磁滞对磁流变液离合器运行的影响

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Purpose - The purpose of this paper is to elaborate upon the mathematical model of coupled electromagnetic, fluid dynamic and motion phenomena that will allow for investigation of the magnetic hysteresis influence on the axial symmetiy magnetorheological fluid (MRF) clutch operation.rnDesign/methodology/approach - To solve the partial differential equations describing magnetic vector and fluid velocity potential distributions in axial symmetry MRF electromechanical transducers the finite-element methods have been applied. To solve model equations in the time domain, the time stepping method have been adopted. To introduce magnetic hysteresis phenomenon to presented approach the Jiles-Atherton model have been applied. The physical properties of MRFs have been modeled by means of the Bingham model. Owing to high nonlinearity of the considered problem to solve obtained matrix equations systems the iterative Newton-Raphson combined with the block over relaxation method have been applied.rnFindings - The proposed model of coupled phenomena and the elaborated algorithm for solving the nonlinear model equations can be successfully applied in the analysis of transients in the MRF transducers taking fluid dynamics and magnetic hysteresis into account. Comparison of the measured and calculated clutch characteristics proves the model accuracy. Moreover, it has been shown that the residual magnetic flux density of the ferromagnetic core has significant impact on both to yield stresses forming in MRFs as well as the torque in disengagement clutch operation. Originality/value - Development of the method for analysis of transients electromagnetic and fluid flow phenomena in MRF transducers taking magnetic hysteresis, electric circuits and motion into account. The presented approach is universal and can be successfully applied in other types of MRF electromechanical transducers such as clutch, brakes, rotary and linear dampers.
机译:目的-本文的目的是阐述耦合的电磁,流体动力学和运动现象的数学模型,这将有助于研究磁滞对轴向对称磁流变流体(MRF)离合器运行的影响.rn设计/方法/方法-为了解决描述轴对称MRF机电传感器中磁矢量和流体速度势分布的偏微分方程,已应用了有限元方法。为了在时域中求解模型方程,采用了时间步长法。为了将磁滞现象引入到提出的方法中,已经应用了吉尔斯-阿瑟顿模型。 MRF的物理性质已通过Bingham模型建模。由于所考虑问题的高度非线性问题,无法解决所获得的矩阵方程组,因此应用了迭代牛顿-拉夫森迭代法与块松弛法相结合。rn发现-提出的耦合现象模型和求解非线性模型方程的详细算法可以考虑到流体动力学和磁滞现象,已成功地应用于MRF传感器的瞬态分析。测量和计算的离合器特性的比较证明了模型的准确性。而且,已经显示出,铁磁芯的剩余磁通密度对在MRF中形成的屈服应力以及在分离离合器操作中的扭矩均具有显着影响。原创性/价值-考虑磁滞,电路和运动的MRF传感器瞬态电磁和流体流动现象分析方法的开发。所提出的方法是通用的,并且可以成功地应用于其他类型的MRF机电传感器,例如离合器,制动器,旋转和线性阻尼器。

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