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有序和无序盘状堆积中的接触网络变化

Contact network changes in ordered and disordered disk packings.

作者信息

Tuckman Philip J, VanderWerf Kyle, Yuan Ye, Zhang Shiyun, Zhang Jerry, Shattuck Mark D, O'Hern Corey S

机构信息

Department of Physics, Yale University, New Haven, Connecticut 06520, USA.

Department of Mechanics and Engineering Science, College of Engineering, Peking University, Beijing 100871, China.

出版信息

Soft Matter. 2020 Oct 28;16(41):9443-9455. doi: 10.1039/d0sm01137a.

Abstract

We investigate the mechanical response of packings of purely repulsive, frictionless disks to quasistatic deformations. The deformations include simple shear strain at constant packing fraction and at constant pressure, "polydispersity" strain (in which we change the particle size distribution) at constant packing fraction and at constant pressure, and isotropic compression. For each deformation, we show that there are two classes of changes in the interparticle contact networks: jump changes and point changes. Jump changes occur when a contact network becomes mechanically unstable, particles "rearrange", and the potential energy (when the strain is applied at constant packing fraction) or enthalpy (when the strain is applied at constant pressure) and all derivatives are discontinuous. During point changes, a single contact is either added to or removed from the contact network. For repulsive linear spring interactions, second- and higher-order derivatives of the potential energy/enthalpy are discontinuous at a point change, while for Hertzian interactions, third- and higher-order derivatives of the potential energy/enthalpy are discontinuous. We illustrate the importance of point changes by studying the transition from a hexagonal crystal to a disordered crystal induced by applying polydispersity strain. During this transition, the system only undergoes point changes, with no jump changes. We emphasize that one must understand point changes, as well as jump changes, to predict the mechanical properties of jammed packings.

摘要

我们研究了由纯排斥性、无摩擦圆盘组成的颗粒体系在准静态变形下的力学响应。这些变形包括在恒定堆积分数和恒定压力下的简单剪切应变、在恒定堆积分数和恒定压力下的“多分散性”应变(即改变颗粒尺寸分布)以及各向同性压缩。对于每种变形,我们表明颗粒间接触网络存在两类变化:跳跃变化和点变化。当接触网络变得力学不稳定、颗粒“重新排列”,且势能(当在恒定堆积分数下施加应变时)或焓(当在恒定压力下施加应变时)及其所有导数都不连续时,就会发生跳跃变化。在点变化过程中,接触网络中会添加或移除单个接触。对于排斥性线性弹簧相互作用,势能/焓的二阶及更高阶导数在点变化处不连续,而对于赫兹相互作用,势能/焓的三阶及更高阶导数不连续。我们通过研究施加多分散性应变引起的从六方晶体到无序晶体的转变,说明了点变化的重要性。在这个转变过程中,体系仅经历点变化,没有跳跃变化。我们强调,要预测堵塞颗粒体系的力学性质,必须同时理解点变化和跳跃变化。

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