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在存在自身产生的流体流动情况下的集体趋化动力学。

Collective chemotactic dynamics in the presence of self-generated fluid flows.

作者信息

Lushi Enkeleida, Goldstein Raymond E, Shelley Michael J

机构信息

Courant Institute of Mathematical Sciences, New York University, New York 10012, USA.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Oct;86(4 Pt 1):040902. doi: 10.1103/PhysRevE.86.040902. Epub 2012 Oct 22.

Abstract

In microswimmer suspensions locomotion necessarily generates fluid motion, and it is known that such flows can lead to collective behavior from unbiased swimming. We examine the complementary problem of how chemotaxis is affected by self-generated flows. A kinetic theory coupling run-and-tumble chemotaxis to the flows of collective swimming shows separate branches of chemotactic and hydrodynamic instabilities for isotropic suspensions, the first driving aggregation, the second producing increased orientational order in suspensions of "pushers" and maximal disorder in suspensions of "pullers." Nonlinear simulations show that hydrodynamic interactions can limit and modify chemotactically driven aggregation dynamics. In puller suspensions the dynamics form aggregates that are mutually repelling due to the nontrivial flows. In pusher suspensions chemotactic aggregation can lead to destabilizing flows that fragment the regions of aggregation.

摘要

在微游动体悬浮液中,游动必然会产生流体运动,并且已知这种流动会导致无偏游动产生集体行为。我们研究了自生成流如何影响趋化性这一互补问题。一种将随机游动-翻滚趋化性与集体游动流耦合的动力学理论表明,对于各向同性悬浮液,趋化性和流体动力学不稳定性存在不同分支,第一个分支驱动聚集,第二个分支在“推进者”悬浮液中产生更高的取向有序度,在“拉引者”悬浮液中产生最大无序度。非线性模拟表明,流体动力学相互作用可以限制和改变趋化驱动的聚集动力学。在拉引者悬浮液中,动力学形成的聚集体由于非平凡流动而相互排斥。在推进者悬浮液中,趋化聚集会导致使聚集区域破碎的不稳定流动。

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