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DEM Study on Energy Allocation Behavior in Crushable Soils

机译:DEM研究可抵碎土中的能量分配行为

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Detailed knowledge of particle-scale energy allocation behavior under the influence of particle breakage is of fundamental importance to the development of micromechanics-based constitutive models of sands. This paper reports original results of the energy input/dissipation of an idealized crushable soil using 3D DEM simulations. Particle breakage is modeled as the disintegration of synthetic agglomerate particles which are made up of parallel-bonded elementary spheres. Simulation results show that the initial specimen density and crushability strongly affect the energy allocation of the soil both at small and large strains. The major role of particle breakage, which itself only dissipates a negligible amount of input energy, is found to advance the soil fabric change and promote the interparticle friction dissipation. Particularly, at small strains, particle breakage disrupts the strain energy buildup and thus reduces the mobilized shear strength and dilatancy of a granular soil. At large strains where particle breakage is greatly reduced, a steady energy dissipation by interparticle friction and mechanical damping is observed. Furthermore, it is found that shear bands develop in most dense crushable specimens at large strains, but they are only weakly correlated to the anisotropy of the accumulated friction dissipation.
机译:粒子破损影响下的粒子级能量分配行为的详细知识对砂岩的基于微机械基本型模型的发展至关重要。本文使用3D DEM模拟报告了理想化的可抵抗力土壤的能量输入/消散的原始结果。颗粒破裂被建模为合成聚集颗粒的崩解,该颗粒由平行粘合的基本球组成。仿真结果表明,初始试样密度和粉碎性强烈影响小型和大菌株的土壤能量分配。颗粒破损的主要作用,本身只能消散可忽略量的输入能量,以推进土壤织物的变化并促进颗粒间摩擦耗散。特别是,在小菌株中,颗粒破裂破坏了应变能量累积,从而降低了粒状土壤的动员剪切强度和膨胀。在大菌株中,颗粒破裂大大减少,观察到通过颗粒末端摩擦和机械阻尼的稳定节能。此外,发现剪切带在大菌株的大多数致密的可抵抗力标本中发育,但它们仅与积累的摩擦耗散的各向异性略微相关。

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