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DEM investigation of shear flows of binary mixtures of non-spherical particles

机译:非球形颗粒二元混合物剪切流的DEM研究

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Discrete element method (DEM) simulations of shear flows of binary mixtures of large non-spherical glued-sphere particles and small spheres are conducted in order to investigate the effect of particle shape and solid volume fraction ratio on the behavior of binary granular flows. The shear stresses first decrease and then increase with total solid volume fraction. The shear stresses increase with the increasing solid volume fraction ratio of large particles. The orientation distributions of large particles show that, in dense regions, the binary system with a higher solid fraction ratio of small spheres exhibits a more uniform alignment in the shear flow direction for large particles. By incorporating the effective particle projected area in the plane perpendicular to the flow plane, the conventional kinetic theory for binary spherical systems is found capable of predicting the stresses for binary systems of non-spherical particles. Stresses for binary systems with various solid volume fraction ratios collapse into a single line by further incorporating the root-mean-cubed diameter, but this scaling is not adequate for dense flows. Comparing the shear stresses for different large particle shapes shows that shear stresses can be affected by the particle shape and particle aspect ratio, but the differences between different particle shapes and aspect ratios are minimized by increasing the solid volume fraction ratio of small spheres. (C) 2019 Elsevier Ltd. All rights reserved.
机译:进行离散元素法(DEM)大型非球形胶合球颗粒和小球体的二元混合物的剪切流模拟,以研究颗粒形状和固体体积分数比对二元粒状流动行为的影响。剪切应力首先降低,然后随着总固体体积分数而增加。剪切应力随着大颗粒的较高的固体体积分数比增加而增加。大颗粒的取向分布表明,在致密区域中,具有较高的小球体均匀比的二元系统在剪切流动方向上具有更均匀的大颗粒对准。通过将垂直于流平面的平面中的有效粒子投影区域结合到流动平面中,发现了二元球形系统的传统动力学理论,其能够预测非球形颗粒的二元系统的应力。通过进一步结合根平均直径的具有各种固体体积分数比的二元系统的胁迫将其塌陷到单线中,但这种缩放不适用于致密流。比较不同大的颗粒形状的剪切应力表明,剪切应力可以受到颗粒形状和颗粒纵横比的影响,但通过增加小球体的固体体积级分比率,不同颗粒形状和纵横比之间的差异最小化。 (c)2019年elestvier有限公司保留所有权利。

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