Spherical particle migration evaluation in low reynolds number couette flow using smooth profile method

M. Pourghasemi, N. Fathi, P. Vorobieff, G. Ahmadi, Seyed Sobhan Aleyasin, L. Eça
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Abstract

An Eulerian–Lagrangian model is developed to investigate the solid particle migration in low Reynolds number shear flows between two parallel plates. A continuous kernel function with a predefined thickness is applied in the implemented numerical model to smooth the discontinuity at the interface between primary and secondary phases. At each time step, the solid particle’s rotation and displacement are calculated to directly capture the interaction between the solid particle and primary liquid phase without simplification. Solution verification is performed using the global deviation grid convergence index approach. The observed order of accuracy for the primary phase solver approaches 2, consistent with the formal order of accuracy of the applied discretization scheme. The obtained velocity profiles from the implemented numerical approach show a good agreement with the analytical solution, confirming the single-phase flow solver’s reliability. The obtained numerical results from the applied Eulerian–Lagrangian multiphase model are also compared with experimental data from a linear shear flow apparatus with suspended buoyant particles, and good agreement was found.
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用光滑剖面法评价低雷诺数couette流中球形颗粒的迁移
建立了欧拉-拉格朗日模型,研究了两平行板间低雷诺数剪切流动中固体颗粒的迁移问题。在实现的数值模型中,采用具有预定义厚度的连续核函数来平滑主次相界面处的不连续。在每个时间步,计算固体颗粒的旋转和位移,直接捕捉固体颗粒与初级液相之间的相互作用,而不简化。采用全局偏差网格收敛指标法对解进行验证。观测到的初级相求解器的精度阶数接近于2,与所应用的离散化方案的形式精度阶数一致。数值计算得到的速度分布与解析解吻合较好,验证了求解器的可靠性。应用欧拉-拉格朗日多相模型得到的数值结果与悬浮悬浮颗粒线性剪切流实验数据进行了比较,两者吻合较好。
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CiteScore
1.10
自引率
0.00%
发文量
24
审稿时长
33 weeks
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