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Grain Sedimentation with SPH-DEM and its Validation

机译:SPH-DEM的谷物沉积及其验证

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Our mesoscale simulation method [M. Robinson, S. Luding, and M. Ramaioli, submitted (2013)] for multiphase fluid-particle flows couples Smoothed Particle Hydrodynamics (SPH) and the Discrete Element Method (DEM) and enjoys the flexibility of meshless methods, such as being capable to handling free surface flows or flow around complex and/or moving geometries. We use this method to simulate three different sedimentation test cases and compare the results to existing analytical solutions. The grain velocity in Single Particle Sedimentation compares well (< 2% error) with the analytical solution as long as the fluid resolution is coarser than two times the particle diameter. The multiple particle sedimentation problem and Rayleigh Taylor Instability (RTI) also perform well against the theory, but it was found that the method is susceptible to fluid velocity fluctuations in the presence of high porosity gradients. These fluctuations can be damped by the addition of a dissipation term, which has no effect on the terminal velocity but can lead to slower growth rates for the RTI.
机译:我们的Messcale仿真方法[M.罗宾逊,S. Luding和M. Ramaioli提交(2013)]对于多相流体粒子流动耦合平滑的粒子流体动力学(SPH)和离散元件方法(DEM),享受无丝绒方法的灵活性,例如能够处理自由表面流(围绕复合物和/或移动几何形状)。我们使用这种方法来模拟三种不同的沉降测试用例,并将结果与​​现有的分析解决方案进行比较。单颗粒沉淀中的颗粒速度与分析液相比,只要流体分辨率粗略于粒径的两倍,就比分析溶液相比。多种粒子沉降问题和瑞利泰勒不稳定性(RTI)也表现出良好的理论,但发现该方法易于在高孔隙梯度存在下的流体速度波动。这些波动可以通过添加耗散术语来阻尼,这对终端速度没有影响,但可以导致RTI的增长速度较慢。

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