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A two-way coupling scheme to model the effects of particle rotation on the rheological properties of a semidilute suspension

机译:一种双向耦合方案,以模拟颗粒旋转对半硫悬浮液流变性能的影响

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According to Einstein's viscosity formula, the effective viscosity of a suspension is related to the volume fraction?of suspended particles. Higher-order terms, which include contributions from hydrodynamic interactions, become more important when the concentration of the suspension reaches around 25%. The coefficientβof the term quadratic in?, however, has not been incontrovertibly validated. In order to investigate the effects on the macroscopic rheology of a suspension due to the rotational motions of the microscopic suspended particles—which are usually neglected in analytical and numerical studies—we have performed simulations of a pressure-driven flow using a two-way coupling method (defined in text). We used the regularized lattice Boltzmann equation for the fluid part of the calculation, and we employed Newton's second law of motion and the equation of angular motion for the translational and rotational motions of the rigid particles. As a result, we found that the particles rotate to achieve kinetic balance with the surrounding hydrodynamic forces, which results in a decrease in fluid resistance. It is therefore important to take into account the particles’ rotational motions and the accompanying changes in the flow field in order to evaluate the effective viscosity of a suspension. The spatial variation of the relative viscosity determined from the wall shear stress becomes more significant with increasing area fraction. We found that the value of the coefficientβmay increase due to hydrodynamic resistance against the rotational motions of the particles.
机译:根据爱因斯坦的粘度配方,悬浮液的有效粘度与体积分数有关?悬浮颗粒。当悬浮液浓度达到约25%时,包括来自流体动力相互作用的贡献的高阶术语。然而,术语中的系数β或者尚未无可争议地验证。为了研究由于微观悬浮颗粒的旋转运动引起对悬浮液的宏观流变学的影响 - 在分析和数值研究中通常被忽略 - 我们使用双向耦合进行了压力驱动流的模拟方法(在文本中定义)。我们使用了对流体部分的正则化格子Boltzmann方程,我们使用了牛顿的第二次运动定律和角运动的方程,用于刚性颗粒的平移和旋转运动。结果,我们发现颗粒旋转以实现与周围的流体动力学的动力学平衡,这导致流体阻力下降。因此,重要的是考虑颗粒的旋转运动和流动场中的随附变化,以评估悬浮液的有效粘度。根据壁剪切应力确定的相对粘度的空间变化随着面积级分的增加而变得更显着。我们发现系数β的值由于含有抗颗粒的旋转运动而导致的水动力抗性增加。

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