流变学
消散
材料科学
微观结构
剪切(地质)
统计物理学
粒子(生态学)
熵(时间箭头)
机械
化学物理
热力学
复合材料
物理
海洋学
地质学
作者
K. Lawrence Galloway,Erin G. Teich,Xiaoguang Ma,Christoph Kammer,I. R. Graham,Nathan C. Keim,Celia Reina,D. J. Jerolmack,Arjun G. Yodh,Paulo E. Arratia
出处
期刊:Research Square - Research Square
日期:2021-05-26
被引量:1
标识
DOI:10.21203/rs.3.rs-523661/v1
摘要
Abstract A fundamental challenge for disordered solids is predicting macroscopic yield from the microscopic arrangements of constituent particles. Yield is accompanied by a sudden and large increase in energy dissipation due to the onset of plastic rearrangements. This suggests that one path to understanding bulk rheology is to map particle configurations to their mode of deformation. Here, we perform laboratory experiments and numerical simulations that are designed to do just that: 2D dense colloidal systems are subjected to oscillatory shear, and particle trajectories and bulk rheology are measured. We quantify particle microstructure using excess entropy. Results reveal a direct relation between excess entropy and energy dissipation, that is insensitive to the nature of interactions among particles. We use this relation to build a physically-informed model that connects rheology to microstructure. Our findings suggest a framework for tailoring the rheological response of disordered materials by tuning microstructural properties.
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