粘弹性粒子气体中的记忆效应

E. Mompó, M. A. López-Castaño, A. Lasanta, F. Vega Reyes, A. Torrente
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引用次数: 18

摘要

我们研究了粘弹性颗粒的颗粒气体,即颗粒材料在碰撞时的动能损失是颗粒在碰撞时相对速度的函数。为了表征该系统的热记忆,我们研究了颗粒状气体受到突然恒温器变化时的温度弛豫曲线(气体通过白噪声均匀加热)。结果表明,系统早期可能出现冷热速度异常。特别是,存在显著的姆潘巴效应;也就是说,最初较热/较冷的颗粒气体可以比比较冷/较热的颗粒气体更快地冷却/升温。此外,当颗粒气体经过一定的程序使其处于与其长期值相等的温度时,还可以观察到颗粒温度的非单调弛豫(也称为Kovacs效应)。我们通过三种独立的方法来研究我们的系统:理论解、分子动力学模拟和动力学方程的精确数值解(通过直接蒙特卡罗模拟方法获得)。我们发现这三种方法之间有很好的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Memory effects in a gas of viscoelastic particles
We study a granular gas of viscoelastic particles, i.e, the kinetic energy loss upon collision, characteristic of granular materials, is a function of the particles relative velocities at impact. In order to characterize thermal memory in this system, we study the temperature relaxation curves when the granular gas is subject to sudden thermostat changes (the gas is heated homogeneously by means of a white noise). Results show that the system may display anomalous cooling and heating velocities at early times. In particular, a significant Mpemba effect is present; i.e., an initially hotter/cooler granular gas can cool down/heat up faster than an in comparison cooler/hotter granular gas. Moreover, a non-monotonic relaxation of the granular temperature can also be observed (also known as Kovacs effect) when the granular gas undergoes a certain protocol that sets it at a temperature equal to its long-time value. We study our system via three independent methods: theoretical solution, molecular dynamics simulations and exact numerical solution of the kinetic equation (obtained by means of the Direct Monte Carlo simulation method). We find a good agreement between all three methods.
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