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Energy-less strain in granular materials - Micromechanical background and modeling

机译:颗粒材料中的无能应变-微机械背景和建模

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摘要

During the macroscopic deformation of granular materials, which consist of an assembly of particles, the micromechanical structures change by forming new contacts or losing existing contacts. Among touching and non-touching particles in granular materials, touching particles contribute to macroscopic stress, which is given as the tensorial average of the contact forces between the particles. However, both touching and non touching particles contribute to macroscopic strain, which is given by the tensorial average of the relative displacements between the particles. As non-touching particles lack contact force and contribute to no internal work, a constraint condition must be imposed on the macroscopic strain due to the non-touching particles; the work induced by the strain due to the non-touching particles must be zero. The strain that meets this constraint condition is called energy-less strain and it is studied further for applications to the macroscopic constitutive modeling of granular materials. The framework of the strain space multiple mechanism model is used to upscale the micromechanical structure of granular materials into the macroscopic constitutive modeling. Through this framework of study, the volumetric strain of the energy-less strain is identified as the dilative component of dilatancy in granular materials. The evolution of induced anisotropy, in terms of the fabric of the energy-less strain, is also identified. (C) 2016 The Japanese Geotechnical Society. Production and hosting by Elsevier B.V. All rights reserved.
机译:在由颗粒集合组成的颗粒材料的宏观变形期间,微机械结构会通过形成新的接触点或失去现有的接触点而发生变化。在粒状材料中的接触和非接触颗粒中,接触颗粒会产生宏观应力,该应力为颗粒之间接触力的张量平均值。然而,接触的和非接触的颗粒都造成宏观应变,这是由颗粒之间相对位移的张量平均值给出的。由于非接触颗粒缺乏接触力并且没有任何内部功,因此必须对非接触颗粒施加的宏观应变施加约束条件。由非接触粒子引起的应变引起的功必须为零。满足该约束条件的应变称为无能应变,并将进一步研究其在颗粒材料的宏观本构模型中的应用。应变空间多机理模型的框架用于将粒状材料的微机械结构升级为宏观的本构模型。通过这种研究框架,无能量应变的体积应变被确定为颗粒材料中膨胀率的膨胀成分。根据无能应变的结构,还可以确定诱导各向异性的演变。 (C)2016年日本岩土学会。 Elsevier B.V制作和托管。保留所有权利。

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