首页> 外文期刊>EPJ Web of Conferences >Coupled DEM-CFD Analysis of the Initiation of Internal Instability in a Gap-Graded Granular Embankment Filter
【24h】

Coupled DEM-CFD Analysis of the Initiation of Internal Instability in a Gap-Graded Granular Embankment Filter

机译:间隙梯度颗粒路堤过滤器内部不稳定性起始的DEM-CFD耦合分析

获取原文
获取外文期刊封面目录资料

摘要

Internal instability is a form of internal erosion that can occur in embankment dams or flood embankments where the finer fraction of the material is washed out under the action of seepage flow; if undetected this process can progress to cause embankment collapse. Gap-graded materials are particularly susceptible. Skempton and Brogan [1] proposed that a key contributor to instability is the reduced stress transmitted by the finer fraction and that the magnitude of this reduced stress could be inferred from the hydraulic gradients observed at the initiation of particle migration in experiments. Here Skempton and Brogan’s hypothesis is assessed at the particle scale using a discrete element method (DEM) model coupled with computational fluid dynamics (CFD). This contribution discusses validation of the coupled DEM-CFD software prior to describing the simulation of a permeameter experiment. The simulation generated particlescale data at the initiation of instability by considering a gap-graded sample subject to at a hydraulic gradient of 1.0 (upward flow). The results provide insight into the instability mechanism, most notably showing that while the particles that move under seepage flow do indeed transmit relatively small effective stress, a finite proportion of the particles that move transfer relatively large stresses.
机译:内部不稳定性是内部侵蚀的一种形式,可能发生在堤坝或洪水堤坝上,在这些地方,在渗流的作用下,较细的物质被冲走了。如果未被发现,则该过程可能会导致路堤倒塌。间隙分级的材料特别容易受到影响。 Skempton和Brogan [1]提出,导致不稳定性的关键因素是细颗粒所传递的应力降低,并且这种降低的应力的大小可以从实验中颗粒迁移开始时观察到的水力梯度来推断。在这里,Skempton和Brogan的假设是使用离散元素方法(DEM)模型与计算流体动力学(CFD)结合在粒子尺度上进行评估的。该文稿在描述渗透仪实验的仿真之前,讨论了耦合DEM-CFD软件的验证。通过考虑间隙梯度的样品在1.0的水力梯度下(向上流动),模拟在不稳定性开始时生成了粒度数据。结果提供了对失稳机理的深入了解,最显着的结果是,尽管在渗流作用下运动的颗粒确实确实传递了相对较小的有效应力,但有限比例的运动颗粒却传递了相对较大的应力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号