物理
混乱的
摄动(天文学)
旋转对称性
湍流
对称性破坏
机械
经典力学
混沌混合
粒子(生态学)
流量(数学)
微扰理论(量子力学)
棒
对称(几何)
统计物理学
几何学
量子力学
平流
地质学
医学
海洋学
替代医学
数学
病理
人工智能
计算机科学
作者
Matteo Borgnino,K. Gustavsson,F. De Lillo,G. Boffetta,Massimo Cencini,B. Mehlig
标识
DOI:10.1103/physrevlett.123.138003
摘要
We study the orientation statistics of spheroidal, axisymmetric microswimmers, with shapes ranging from disks to rods, swimming in chaotic, moderately turbulent flows. Numerical simulations show that rodlike active particles preferentially align with the flow velocity. To explain the underlying mechanism, we solve a statistical model via the perturbation theory. We show that such an alignment is caused by correlations of fluid velocity and its gradients along particle paths combined with fore-aft symmetry breaking due to both swimming and particle nonsphericity. Remarkably, the discovered alignment is found to be a robust kinematical effect, independent of the underlying flow evolution. We discuss its possible relevance for aquatic ecology.
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