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首页> 外文期刊>Journal of Failure Analysis and Prevention >Erosion Failure of Horizontal Pipe Reducing Wall in Power-Law Fluid Containing Particles via CFD–DEM Coupling Method
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Erosion Failure of Horizontal Pipe Reducing Wall in Power-Law Fluid Containing Particles via CFD–DEM Coupling Method

机译:水平管减少墙体在含有CFD-DEM耦合法的含粒子的水平管液中的侵蚀失效

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AbstractA CFD–DEM-based two-phase flow model and a test-based erosion model are used to obtain the specific erosion on the reducing wall of sudden contraction section. The dimensionless filtered governing equations are adopted for incompressible power-law fluid flow, and the Hertz–Mindlin (no-slip) model for particle–particle and particle–wall contact. The annular reducing wall is divided into two erosion areas in radial direction based on erosion form and divided into four parts in the circumferential direction. The calculated result is verified with a full-scale experiment, and it shows a good agreement. The calculated results show that the erosion rate of the reducing wall is mainly determined by the flow velocity, and the erosion area is affected by liquid viscosity. The serious erosion region is located in the inner edge of the sample lower part, and this region expends to the outer circumference with the increasing flow velocity and the reducing liquid viscosity. The increase in flow velocity expands the flow region where the particle can impact the wall and thus increases the particle impact numbers.Graphical Abstract
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机译:Abstract基于CFD–DEM的两相流模型和基于试验的侵蚀模型用于获得突然收缩段减径壁上的具体侵蚀。不可压缩幂律流体流动采用无量纲过滤控制方程,赫兹–明德林(无滑移)粒子-粒子和粒子-壁接触的模型。环形减径壁根据冲蚀形式在径向上分为两个冲蚀区,在周向上分为四个部分。计算结果与全尺寸试验结果吻合较好。计算结果表明,减径壁的冲蚀速率主要由流速决定,冲蚀面积受液体粘度的影响。严重侵蚀区位于样品下部的内边缘,随着流速的增加和液体粘度的降低,该区域扩展到外圆周。流速的增加扩大了颗粒撞击壁面的流动区域,从而增加了颗粒撞击次数图形摘要
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