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Magnetorheological Fluids Modeling: Without the No-Slip Boundary Condition

机译:磁流变流体建模:无滑移边界条件

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In this work, we have developed a new micro-mechanic-hydrodynamic model to predict the yield stress of magnetorheological fluids, which is also applicable without the no-slip boundary condition. We first determine the storage modulus of a MR fluid with a three-dimensional chain structure model taking into account the field concentration between the particles inside the aggregates and the effect of saturation magnetization of the particles. Then we determine the apparent viscosity of a MR fluid using the balance between the magnetic torque and hydrodynamic torque. The magnetic interaction between the particles and the wall, as well as the static coefficient of friction, are considered. Experiments are conducted to measure the magnetic properties of two MR fluids with core-shell particles. The predictions of the model are compared to preliminary experimental data obtained in a controlled stress plate-plate rheometer and other theoretical predictions. It is found that the model gives almost the correct yield stress for the MRFs in the magnetic fields lower than the saturation field, but underestimates the experimental results obtained in the magnetic fields higher than the saturation field.
机译:在这项工作中,我们开发了一种新的微机械流体力学模型来预测磁流变流体的屈服应力,该模型也可以在没有滑移边界条件的情况下应用。我们首先使用三维链结构模型确定MR流体的储能模量,该模型考虑了聚集体内颗粒之间的场浓度以及颗粒的饱和磁化强度的影响。然后,我们使用磁转矩和流体动力转矩之间的平衡来确定MR流体的表观粘度。考虑了颗粒与壁之间的磁性相互作用以及静态摩擦系数。进行实验以测量两种具有核-壳颗粒的MR流体的磁性能。将模型的预测与在受控应力板流变仪中获得的初步实验数据以及其他理论预测进行比较。结果发现,该模型在磁场低于饱和磁场的情况下,给出了MRF几乎正确的屈服应力,但低估了磁场高于饱和磁场的实验结果。

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