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Probability analysis of contact forces in quasi-solid-liquid phase transition of granular shear flow 被引量:3

Probability analysis of contact forces in quasi-solid-liquid phase transition of granular shear flow
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摘要 The quasi-solid-liquid phase transition exists widely in different fields,and attracts more attention due to its instinctive mechanism.The structure of force chains is an important factor to describe the phase transition properties.In this study,the discrete element model(DEM) is adopted to simulate a simple granular shear flow with period boundary condition on micro scale.The quasi-solid-liquid phase transition is obtained under various volume fractions and shear rates.Based on the DEM results,the probability distribution functions of the inter-particle contact force are obtained in different shear flow phases.The normal,tangential and total contact forces have the same distributions.The distribution can be fitted as the exponential function for the liquid-like phase,and as the Weibull function for the solid-like phase.To describe the progressive evolution of the force distribution in phase transition,we use the Weibull function and Corwin-Ngan function,respectively.Both of them can determine the probability distributions in different phases and the Weibull function shows more reasonable results.Finally,the force distributions are discussed to explain the characteristics of the force chain in the phase transition of granular shear flow.The distribution of the contact force is an indicator to determine the flow phase of granular materials.With the discussions on the statistical properties of the force chain,the phase transition of granular matter can be well understood. The quasi-solid-liquid phase transition exists widely in different fields, and attracts more attention due to its instinctive mechanism. The structure of force chains is an important factor to describe the phase transition properties. In this study, the discrete element model (DEM) is adopted to simulate a simple granular shear flow with period boundary condition on micro scale. The quasi-solid-liquid phase transition is obtained under various volume fractions and shear rates. Based on the DEM results, the probability distribution functions of the inter-particle contact force are obtained in different shear flow phases. The normal, tangential and total contact forces have the same distributions. The distribution can be fitted as the exponential function for the liquid-like phase, and as the Weibull function for the solid-like phase. To describe the progressive evolution of the force distribution in phase transition, we use the Weibull function and Corwin-Ngan function, respectively. Both of them can determine the probability distributions in different phases and the Weibull function shows more reasonable results. Finally, the force dis- tributions are discussed to explain the characteristics of the force chain in the phase transition of granular shear flow. The dis- tribution of the contact force is an indicator to determine the flow phase of granular materials. With the discussions on the statistical properties of the force chain, the phase transition of granular matter can be well understood.
作者 JI ShunYing
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2013年第2期395-403,共9页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the National Basic Research Program of China (Grant No. 2010CB731502) the Fundamental Research Funds forthe Central Universities (Grant No. DUT12YQ02)
关键词 granular materials quasi-solid-liquid phase transition force chain statistical characteristics simple shear flow 相变特性 剪切流动 颗粒材料 接触力 概率分析 Weibull函数 Weibull分布函数 概率分布函数
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