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水力发电学报 ›› 2025, Vol. 44 ›› Issue (7): 97-108.doi: 10.11660/slfdxb.20250708

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颗粒形态对间断级配砂砾土内部侵蚀影响研究

  

  • 出版日期:2025-07-25 发布日期:2025-07-25

Study on impact of particle morphology on internal erosion in gap-graded sand and gravel soils

  • Online:2025-07-25 Published:2025-07-25

摘要: 渗流作用下间断级配砂砾土细颗粒通过粗颗粒间空隙通道迁移导致内部侵蚀,引发土骨架重新分布和变形进而威胁土石坝、堤防等工程的安全。颗粒形态以及与其他参数的关联性是影响土体结构发生内部侵蚀的重要原因之一。本研究采用自主研发的土体内部侵蚀装置,对3种不同颗粒形态的间断级配砂砾土开展不同水力梯度条件下土体内部侵蚀试验,揭示土体内部侵蚀的宏观演变特征;基于计算流体动力学-离散元耦合方法(CFD-DEM),从力链、接触力、配位数的细观层面探究不同球形度粗颗粒形态和细颗粒含量对间断级配砂砾土内部侵蚀的综合影响。结果表明:当细颗粒含量相同时,土体粗颗粒球形度越高,细颗粒的流失数量和规模越显著;非球形颗粒的自锁效应增强了间断级配砂砾土的抗渗透性;土体粗颗粒球形度与平均配位数呈反比关系。研究结果可为评价间断级配砂砾土发生内部侵蚀风险提供重要依据。

关键词: 间断级配砂砾土, 内部侵蚀, 颗粒形态, CFD-DEM, 细颗粒流失

Abstract: For gap-graded sand and gravel soils under seepage flow, internal erosion is caused by fine particles migrating through void channels between coarse particles. The migration leads to the redistribution and deformation of the soil skeleton, thereby threatening the safety and stability of earth and rock dams, dykes and so on. Particle morphology along with its correlation with other parameters is one of the most important influences on internal erosion to soil structures. In this study, a custom-developed soil internal erosion set-up is used to conduct experimental tests on three types of gap-graded sand and gravel soils with varying particle morphologies under different hydraulic gradients, focusing on the macroscopic evolution characteristics of soil internal erosion. Using the computational fluid dynamics-discrete element method (CFD-DEM) coupling approach, we consider coarse particle morphology with different sphericity and fine particle content to examine their combined effects on internal erosion from the perspectives of force chains, contact forces, and coordination numbers. The findings indicate that with a fixed content of fine particles in the soil, the higher the sphericity of its coarse particles, the more significant is the number and magnitude of its fine particles that are lost due to internal erosion. The self-locking effect of non-spherical particles enhances its resistance to seepage failure. Additionally, the sphericity of coarse particles is inversely related to the average coordination number. These findings lay a basis for assessing the internal erosion risk of gap-graded sand and gravel soils.

Key words: gap-graded sand and gravel soil, internal erosion, particle morphology, CFD-DEM, loss of fine grain

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