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Numerical simulations of the flow of dilute granular materials around obstacles

机译:障碍物周围稀颗粒物料流动的数值模拟

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Numerical simulations were carried out to examine the flow of dry granular materials around obstacles.Two numerical approaches were used.The first is a single-phase formulation based on a Particle-In-Cell (PIC) approach,and employs simplified expressions for the granular stresses.The second approach is based on a two-phase Eulerian-Eulerian formulation,and includes equations for the dynamic granular stresses based on the kinetic theory of granular materials.The code FLUENT 6.1 was used in that case.The simulations of single-phase granular flow examined the patterns of flow around a flat plate,and the role of velocity,solids volume fraction and material properties.The results show that a granular shock wave develops in front of the obstacle,where velocities and solids volume fraction underwent a jump.A stagnant wedge inside the shock immediately in front of the obstacle was obtained.The predicted shapes of the granular shock agree with available descriptions of experimental observations.It was possible to use the two-phase model in those calculations by neglecting the interaction force between the two phases.The results were in agreement with those of the single-phase PIC model.The two-phase model was then used to examine the role of the interstitial gas.The results show that the presence of the gas phase can appreciably alter flow patterns,even for relatively coarse particles.
机译:进行了数值模拟,以检查障碍物周围干燥的颗粒状物料的流动情况。使用了两种数值方法。第一种是基于颗粒内细胞(PIC)方法的单相配方,并采用了颗粒的简化表达式第二种方法基于两相欧拉-欧拉公式,并包括基于颗粒材料动力学理论的动态颗粒应力方程。在这种情况下使用代码FLUENT 6.1。单相模拟颗粒流检查了平板周围的流动模式,以及速度,固体体积分数和材料特性的作用。结果表明,在障碍物前方会产生颗粒冲击波,其中速度和固体体积分数会发生跳跃。获得了紧接在障碍物前方的冲击内部的停滞楔形。颗粒冲击的预测形状与实验观察的可用描述相符通过忽略两相之间的相互作用力,可以在计算中使用两相模型,其结果与单相PIC模型的结果相符,然后使用两相模型来检验结果表明,即使存在相对较粗的颗粒,气相的存在也会明显改变流型。

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