Enhanced efficiency of feeding and mixing due to chaotic flow patterns around choanoflagellates.

B. Orme, S. Otto, J. Blake
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引用次数: 15

Abstract

The motion of particles and feeding currents created by micro-organisms due to a flagellum are considered. The calculations are pertinent to a range of sessile organisms, but we concentrate on a particular organism, namely Salpingoeca amphoridium (SA) (a choanoflagellate), due to the availability of experimental data (Pettitt, 2000). These flow fields are characterized as having very small Reynolds numbers, which implies that viscous forces dominate over inertial ones consistent with using the Stokes flow equations. The flow generated by the flagellum is modelled via the consideration of a point force known as a stokeslet. The interaction between the boundary, to which the organism is attached, and its flagellum leads to toroidal eddies, which serve to transport particles towards the micro-organism, promoting filtering of nutrients by the microvilli which constitute the cell's collar (the filtering mechanism in SA). It is our conjecture that the interaction of multiple toroidal eddies will lead to chaotic advection and hence enhance the domain of feeding for these organisms. The degree of mixing in the region around SA is investigated using chaotic and statistical measures to study the influence the flagellum has on the surrounding fluid. The three-dimensional particle paths around such organisms are also considered with the aim of showing that the plane within which they are situated is an attractor.
由于鞭毛藻周围的混乱流动模式,提高了喂养和混合的效率。
考虑了由鞭毛引起的微粒运动和微生物产生的摄食流。这些计算与一系列无根生物有关,但由于实验数据的可用性,我们将重点放在一个特定的生物上,即Salpingoeca amphoridium (SA)(一种鞭藻)(Pettitt, 2000)。这些流场的特点是具有非常小的雷诺数,这意味着粘性力比惯性力占主导地位,与使用斯托克斯流动方程一致。由鞭毛产生的流动是通过考虑一个被称为小涡的点力来模拟的。生物体附着的边界与其鞭毛之间的相互作用导致环形涡流,用于向微生物输送颗粒,促进构成细胞项圈的微绒毛对营养物质的过滤(SA中的过滤机制)。我们推测,多个环形涡流的相互作用将导致混乱的平流,从而增强这些生物的取食域。利用混沌和统计方法研究了鞭毛对周围流体的影响,研究了鞭毛对周围流体的混合程度。这些生物周围的三维粒子路径也被考虑,目的是表明它们所在的平面是一个吸引子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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