Spontaneous Negative Entropy Increments in Granular Flows.

Journal of Applied Mechanics Pub Date : 2021-03-01 Epub Date: 2020-12-04 DOI:10.1115/1.4049184
Rossella Laudani, Martin Ostoja-Starzewski
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引用次数: 2

Abstract

The entropy inequality, commonly taken as an axiom of continuum mechanics, is found to be spontaneously violated in macroscopic granular media undergoing collisional dynamics. The result falls within the fluctuation theorem of nonequilibrium thermodynamics, which is known to replace the Second Law for finite systems. This phenomenon amounts to the system stochastically displaying negative increments of entropy. The focus is on granular media in Couette flows, consisting of monosized circular disks (with 10 to 104 disks of diameters 0.01 m to 1 m) with frictional-Hookean contacts simulated by molecular dynamics accounting for micropolar effects. Overall, it is determined that the probability of negative entropy increments diminishes with the Eulerian velocity gradient increasing, while it tends to increase in a sigmoidal fashion with the Young modulus of disks increasing. This behavior is examined for a very wide range of known materials: from the softest polymers to the stiffest (i.e., carbyne). The disks' Poisson ratio is found to have a weak effect on the probability of occurrence of negative entropy increments.

颗粒流中的自发负熵增量。
通常作为连续介质力学公理的熵不等式,在经历碰撞动力学的宏观颗粒介质中被发现是自发违背的。这个结果属于非平衡态热力学的涨落定理,它取代了有限系统的第二定律。这种现象相当于系统随机地显示负熵增量。重点是库埃特流中的颗粒介质,由单尺寸圆盘(直径为0.01 m至1 m的10至104个圆盘)组成,通过分子动力学模拟摩擦-胡克接触,计算微极性效应。总的来说,可以确定负熵增量的概率随着欧拉速度梯度的增加而减小,而随着圆盘杨氏模量的增加,负熵增量的概率呈s型增加。这种行为在已知材料的范围非常广:从最软的聚合物到最硬的(即,碳炔)。发现圆盘的泊松比对负熵增量发生的概率有微弱的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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