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Shear behaviors of granular mixtures of gravel-shaped coarse and spherical fine particles investigated via discrete element method

机译:通过离散元素法研究了砾石形粗糙和球形细颗粒颗粒混合物的剪切行为

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The shear behaviors of granular mixtures are studied using the discrete element method. These granular materials contain real gravel-shaped coarse particles and spherical fine particles. Dense samples have been created by the isotropic compression method. The samples are then sheared under drained triaxial compression to a large strain to determine the peak and residual shear strengths. The emphasis of this study is placed on assessing the evolutions of contributions of the coarse-coarse (CC) contacts, coarse-fine (CF) contacts and fine-fine (FF) contacts to the peak and critical deviator stresses. The results are used to classify the structure of granular mixtures. Specifically, the granular mixtures are fine-dominated or coarse-dominated materials when the coarse particle content is <30%-40% or >65%-70%, respectively. A comparison with previous findings suggests that the spherical binary mixtures will become coarse-dominated materials at a relatively larger coarse particle content (i.e., 75%-80%) than this study (i.e., 65%-70%), which is attributed to the particle shape effect of coarse particles. A microscopic analysis of CC, CF and FF contacts at the peak and critical states, including normal contact forces and proportions of strong and weak contacts of each contact type to total contacts, reveals why the contributions of CC, CF and FF contacts to the peak and residual shear strengths are varied. Finally, a detailed analysis of the anisotropies indicates that the increases of peak and residual shear strengths are primarily related to the gradual increases in geometrical anisotropy a(c) and tangential contact force anisotropy a(t) to compensate for the continuous decrease in normal contact force anisotropy a(n). Furthermore, it is interesting to note that the branch vector frame provides a better linear relationship between the stress ratio and the geometric anisotropy of the strong and nonsliding subnetwork than the contact frame for the coarse-dominated materials. (C) 2019 Elsevier B.V. All rights reserved.
机译:使用离散元素法研究颗粒混合物的剪切行为。这些颗粒状物质含有真正的碎石形粗颗粒和球形细颗粒。通过各向同性压缩方法创造了致密的样品。然后将样品在排出的三轴压缩下剪切到大应变以确定峰值和残留的剪切强度。本研究的重点是评估粗粗(CC)触点的贡献的演变,粗细(CF)触点和细细(FF)接触到峰值和临界偏差应力。结果用于分类粒状混合物的结构。具体地,当粗颗粒含量分别为30%-40%或> 65%-70%时,粒状混合物是细定的或粗定为主的材料。与先前研究结果的比较表明,球形二元混合物的粗颗粒含量(即75%-80%)比该研究(即65%-70%)归因于粗颗粒的颗粒形状效应。在峰值和临界状态下的CC,CF和FF触点的显微镜分析,包括正常接触力和每个接触式对总接触的强和弱触点的比例,揭示了为什么CC,CF和FF触点对峰的贡献和残留的剪切强度变化。最后,各向异性的详细分析表明峰值和残留剪切强度的增加主要与几何各向异性A(c)和切向接触力各向异性A(t)的逐渐增加,以补偿正常接触的连续减少力各向异性A(n)。此外,有趣的是指出,分支矢量帧在应力比和强度和非隙子网的几何各向异性之间提供比粗占材料的接触框的应力比和几何各向异性之间的更好的线性关系。 (c)2019年Elsevier B.V.保留所有权利。

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