Mechanics of granular column collapse in fluid at varying slope angles

IF 3.4 3区 工程技术 Q1 MECHANICS 水动力学研究与进展:英文版 Pub Date : 2017-08-01 DOI:10.1016/S1001-6058(16)60766-7
K. Kumar , J.-Y. Delenne , K. Soga
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引用次数: 31

Abstract

This paper investigates the effect of initial volume fraction on the runout characteristics of collapse of granular columns on slopes in fluid. 2-D sub-grain scale numerical simulations are performed to understand the flow dynamics of granular collapse in fluid. The discrete element method (DEM) technique is coupled with the lattice Boltzmann method (LBM), for fluid-grain interactions, to understand the evolution of submerged granular flows. The fluid phase is simulated using multiple-relaxation-time LBM (LBM-MRT) for numerical stability. In order to simulate interconnected pore space in 2-D, a reduction in the radius of the grains (hydrodynamic radius) is assumed during LBM computations. The collapse of granular column in fluid is compared with the dry cases to understand the effect of fluid on the runout behaviour. A parametric analysis is performed to assess the influence of the granular characteristics (initial packing) on the evolution of flow and run-out distances for slope angles of 0°, 2.5°, 5° and 7.5°. The granular flow dynamics is investigated by analysing the effect of hydroplaning, water entrainment and viscous drag on the granular mass. The mechanism of energy dissipation, shape of the flow front, water entrainment and evolution of packing density is used to explain the difference in the flow characteristics of loose and dense granular column collapse in fluid.

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不同坡角下颗粒柱在流体中的崩塌力学
本文研究了初始体积分数对流体中斜坡上颗粒柱崩塌跳动特性的影响。通过二维亚颗粒尺度的数值模拟,了解颗粒在流体中崩塌的流动动力学。将离散元法(DEM)技术与晶格玻尔兹曼方法(LBM)相结合,用于流体-颗粒相互作用,以了解淹没颗粒流动的演化。采用多松弛时间LBM (LBM- mrt)模拟了流体相的数值稳定性。为了在二维中模拟互联孔隙空间,在LBM计算中假定颗粒半径减小(水动力半径)。将颗粒柱在流体中的崩塌与干燥情况进行了比较,以了解流体对跳动行为的影响。进行了参数分析,以评估颗粒特性(初始堆积)对坡度为0°、2.5°、5°和7.5°时流动演变和流出距离的影响。通过分析滑水、水夹带和粘性阻力对颗粒质量的影响,研究了颗粒的流动动力学。利用能量耗散机制、流锋面形态、水夹带机制和堆积密度演化机制来解释松散和致密颗粒柱在流体中崩塌流动特性的差异。
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来源期刊
CiteScore
5.90
自引率
0.00%
发文量
1240
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