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具有惯性的活性物质的压力与扩散

Pressure and diffusion of active matter with inertia.

作者信息

Sandoval Mario

机构信息

Department of Physics, Universidad Autonoma Metropolitana-Iztapalapa, Mexico City 09340, Mexico.

出版信息

Phys Rev E. 2020 Jan;101(1-1):012606. doi: 10.1103/PhysRevE.101.012606.

Abstract

It has been discovered that active matter generates novel physical quantities such as the swim pressure. This quantity arises from the exchange of extra momentum between active particles and the boundaries of the system. Given its origin, this quantity can exist at different scales; hence microorganisms and larger organisms like fish or birds generate their own swim pressure. For larger organisms or for high swimming speeds, inertia cannot necessarily be neglected; hence in this paper, we start by calculating analytically the effect of finite translational and rotational particles' inertia on the diffusion of a system of noninteracting spherical active Brownian particles. From this analysis, an enhanced diffusion coefficient due to rotational inertia is obtained, and an alternative effective persistence length and an alternative reorientation time, both sensitive to rotational inertia, are also identified. Afterwards, and to see the implications of finite inertia on bulk properties, the pressure of this system is elucidated by calculating its respective swim and Reynolds pressures. It is found that their sum becomes asymptotically sensitive to the square root of its rotational inertia. To validate our analytical results, Langevin dynamics simulations are also performed showing an excellent agreement between our theoretical predictions and the numerical results.

摘要

人们发现活性物质会产生诸如游动压力等新的物理量。这个量源于活性粒子与系统边界之间额外动量的交换。鉴于其起源,这个量可以存在于不同尺度;因此微生物以及像鱼或鸟这样的较大生物体都会产生它们自己的游动压力。对于较大生物体或高游动速度,惯性不一定能被忽略;因此在本文中,我们首先通过解析计算有限平动和转动粒子惯性对非相互作用球形活性布朗粒子系统扩散的影响。通过该分析,得到了由于转动惯性导致的增强扩散系数,还确定了对转动惯性敏感的另一种有效持久长度和另一种重定向时间。之后,为了了解有限惯性对整体性质的影响,通过计算该系统各自的游动压力和雷诺压力来阐明其压力。发现它们的和对其转动惯性的平方根渐近敏感。为了验证我们的解析结果,还进行了朗之万动力学模拟,结果表明我们的理论预测与数值结果之间具有极好的一致性。

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