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Force distributions and stress response in granular materials.

机译:颗粒材料中的力分布和应力响应。

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摘要

Despite the apparent simplicity of static collections of grains, our understanding of the physics required to describe them remains surprisingly incomplete. We study two aspects of this problem: the distribution of forces within a granular medium, and the transmission of force through the bulk of the material.; We study a lattice model of underconstrained contact forces between grains. We study the distribution of forces in the ensemble with all noncohesive force balanced configurations of the lattice given equal weight. We find that regular lattices subject to hydrostatic pressure possess force distributions that decay faster than exponentially. Under contact dilution the distribution broadens but remains faster than exponential. Under increasingly anisotropic confining pressure the distribution develops an exponential tail, in agreement with experimental results of Majmudar and Behringer. We also study spatial fluctuations in the pressure. We find that fluctuations possess no characteristic length scale. The flat spectrum is shown to be a consequence of the restriction to noncohesive contact forces and persists in anisotropic lattices.; Secondly, we study the stress response to a boundary force of a two-dimensional hexagonally anisotropic material in nonlinear elasticity. We find that nonlinear effects become prominent as the rigidity of the grains increases. We develop corrections to the Boussinesq result of linear elasticity in an expansion in inverse powers of the distance from the boundary force. Free parameters in the calculation are fixed by fitting to the data of Geng and Behringer for hexagonal packings of photoelastic disks. The model reproduces the multiple peaks observed at shallow depth and predicts a crossover at large depths to the single-peaked linearly broadening Boussinesq profile.; Thirdly, we study the directed force chain network theory, a continuum model for the stresses in a static packing of rigid grains that describes a collection of propagating, interacting chains of force within the material. We extend previous calculations to the case of a continuous set of propagation directions for homogeneous isotropic materials. We identify a sum rule for the density of chains and relate two model parameters to measurable quantities. The chain density satisfies a nonlinear integro-differential equation whose solution awaits further study.
机译:尽管谷物的静态集合看起来很简单,但我们对描述它们所需的物理学的理解仍然令人惊讶地不完整。我们研究了这个问题的两个方面:颗粒介质中的力分布以及通过材料主体的力传递。我们研究了晶粒间接触力不足的晶格模型。我们研究了在给定相等权重的情况下晶格的所有非内聚力平衡构型的合力分布。我们发现受静水压力作用的规则晶格具有比指数衰减快的力分布。在接触稀释下,分布变宽,但保持比指数快的速度。与Majmudar和Behringer的实验结果相一致,在越来越各向异性的围压下,分布形成了指数尾巴。我们还研究压力的空间波动。我们发现波动不具有特征长度尺度。平坦光谱被证明是限制非粘性接触力的结果,并且在各向异性晶格中持续存在。其次,我们研究了二维六边形各向异性材料在非线性弹性中对边界力的应力响应。我们发现随着晶粒刚度的增加,非线性效应变得更加突出。我们发展了对线性弹性的Boussinesq结果的修正,该结果是与边界力的距离的反幂的扩展。计算中的自由参数通过拟合Geng和Behringer的光弹盘六角形填充物数据来固定。该模型再现了在浅深度处观察到的多个峰,并预测了在大深度处与单峰线性加宽的Boussinesq轮廓的交叉。第三,我们研究了有向力链网络理论,这是一种用于刚性颗粒静态堆积中应力的连续模型,该模型描述了材料中传播,相互作用的力链的集合。我们将先前的计算扩展到均质各向同性材料的一组连续传播方向的情况。我们确定了链密度的求和规则,并将两个模型参数与可测量的数量相关联。链密度满足非线性积分微分方程,其解有待进一步研究。

著录项

  • 作者

    Tighe, Brian P.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

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