在非平衡介质中运动的探针所引起的摩擦。

IF 2.4 3区 物理与天体物理 Q1 Mathematics
Ji-Hui Pei, Christian Maes
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引用次数: 0

摘要

利用投影算子法和路径空间响应理论的有力结合,推导了在时间尺度分离假设下,耦合于稳定非平衡介质的慢速惯性探头的波动动力学。非平衡是通过介质粒子的外部非梯度驱动或它们的(非热)主动自推进来实现的。探针上产生的摩擦是介质可观测值的明确时间相关性,并分解为两个项:一个熵项,与平衡介质的爱因斯坦关系中的噪声方差成正比,一个狂热项可以采用两种符号。为了说明这一点,我们给出了探针在旋转滚筒式介质中的线性摩擦系数和噪声幅值的精确表达式。我们发现,当非平衡介质表现出足够和持续的旋转电流时,探针的绝对负摩擦会发生转变。在那里,探测器向高速的逃逸实现了非平衡诱导的加速度。仿真结果表明,它的速度最终趋于饱和,产生一个对称的平稳的双峰探测动量分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Induced friction on a probe moving in a nonequilibrium medium.

Using a powerful combination of projection-operator method and path-space response theory, we derive the fluctuation dynamics of a slow inertial probe coupled to a steady nonequilibrium medium under the assumption of time-scale separation. The nonequilibrium is realized by external nongradient driving on the medium particles or by their (athermal) active self-propulsion. The resulting friction on the probe is an explicit time correlation for medium observables and is decomposed into two terms: one entropic, proportional to the noise variance as in the Einstein relation for equilibrium media, and a frenetic term that can take both signs. As an illustration, we give the exact expressions for the linear friction coefficient and noise amplitude of a probe in a rotating run-and-tumble medium. We find a transition to absolute negative probe friction as the nonequilibrium medium exhibits sufficient and persistent rotational current. There, the run-away of the probe to high speeds realizes a nonequilibrium-induced acceleration. Simulations show that its speed finally saturates, yielding a symmetric stationary probe-momentum distribution with two peaks.

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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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