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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >A study on the uniqueness of the plastic flow direction for granular assemblies of ductile particles using discrete finite-element simulations
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A study on the uniqueness of the plastic flow direction for granular assemblies of ductile particles using discrete finite-element simulations

机译:使用离散有限元模拟研究可塑性颗粒颗粒组装的塑性流向的唯一性

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摘要

The multi-particle finite element method involving assemblies of meshed particles interacting through finite-element contact conditions is adopted to study the plastic flow of a granular material with highly deformable elastic-plastic grains. In particular, it is investigated whether the flow rule postulate applies for such materials. Using a spherical stress probing method, the influence of incremental stress on plastic strain increment vectors was assessed for numerical samples compacted along two different loading paths up to different values of relative density. Results show that the numerical samples studied behave reasonably well according to an associated flow rule, except in the vicinity of the loading point where the influence of the stress increment proved to be very significant. A plausible explanation for the non-uniqueness of the direction of plastic flow is proposed, based on the idea that the resistance of the numerical sample to plastic straining can vary by an order of magnitude depending on the direction of the accumulated stress. The above-mentioned dependency of the direction of plastic flow on the direction of the stress increment was related to the difference in strength between shearing and normal stressing at the scale of contact surfaces between particles.
机译:采用包含有限元接触条件相互作用的网状颗粒集合体的多颗粒有限元方法来研究具有高度可变形弹塑性颗粒的粒状材料的塑性流动。特别地,研究了流动规则假设是否适用于这种材料。使用球形应力探测方法,评估了沿两个不同的加载路径压缩至不同相对密度值的数值样本的增量应力对塑性应变增量矢量的影响。结果表明,所研究的数值样本根据相关的流动规则表现得相当好,除了在载荷点附近,应力增加的影响被证明是非常显着的。基于数值样本对塑性应变的抵抗力可能会随着累积应力的方向变化一个数量级的想法,提出了塑性流动方向不唯一的合理解释。塑性流动方向对应力增加方向的上述依赖性与颗粒之间接触表面尺度上的剪切力和法向应力之间的强度差有关。

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