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A Particle Pair Model for Magnetorheological Fluids

机译:磁流变流体的粒子对模型

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摘要

A microstructural model of the motion of particle pairs in MR fluids is proposed that accounts for both hydrodynamic and magnetic field forces. A fluid constitutive equation is derived from the model that allows prediction of velocity, particle structure and yield stress. Results for simple shear and elongational flows are presented for cases where particle pairs remain in close contact so they are hydrodynamically equivalent to an ellipsoid of aspect ratio two. In this limiting case, only the magnetic force component normal to the vector connecting the centers of a particle pair affects motion. Shear flow results indicate particle pairs rotate continuously with the flow at low magnetic fields while a steady state is reached at high fields. For elongational flows, when the applied magnetic field is parallel to the elongation direction, particle pairs orient in the field/flow direction. Either orientation is possible when the field is perpendicular to the flow. A second theoretical approach to the prediction of the yield stress is presented. Predictions for various shear rates and magnetic fields are compared with experimental data. The comparison indicates a good agreement between model predictions and experimental data at low to moderate magnetic fields.
机译:提出了考虑流体动力和磁场力的磁流体中颗粒对运动的微观结构模型。从该模型导出流体本构方程,从而可以预测速度,颗粒结构和屈服应力。对于颗粒对保持紧密接触的情况,给出了简单剪切流和伸长流的结果,因此它们在流体力学上等效于纵横比为2的椭圆体。在这种限制情况下,只有垂直于连接粒子对中心的向量的磁力分量会影响运动。剪切流结果表明,在低磁场下,粒子对随流连续旋转,而在高磁场下达到稳态。对于伸长流动,当所施加的磁场平行于伸长方向时,粒子对在场/流动方向上取向。当场垂直于流时,任何一种取向都是可能的。提出了第二种预测屈服应力的理论方法。将各种剪切速率和磁场的预测与实验数据进行比较。比较表明在中低磁场下模型预测与实验数据之间有很好的一致性。

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