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纤细裸藻的游动方式:流场重建与分析。

How Euglena gracilis swims: Flow field reconstruction and analysis.

作者信息

Giuliani Nicola, Rossi Massimiliano, Noselli Giovanni, DeSimone Antonio

机构信息

SISSA-International School for Advanced Studies, Via Bonomea 265, 34136 Trieste, Italy.

DTU-Department of Physics, Technical University of Denmark, DTU Physics Building 309, DK-2800 Kongens Lyngby, Denmark.

出版信息

Phys Rev E. 2021 Feb;103(2-1):023102. doi: 10.1103/PhysRevE.103.023102.

Abstract

Euglena gracilis is a unicellular organism that swims by beating a single anterior flagellum. We study the nonplanar waveforms spanned by the flagellum during a swimming stroke and the three-dimensional flows that they generate in the surrounding fluid. Starting from a small set of time-indexed images obtained by optical microscopy on a swimming Euglena cell, we construct a numerical interpolation of the stroke. We define an optimal interpolation (which we call synthetic stroke) by minimizing the discrepancy between experimentally measured velocities (of the swimmer) and those computed by solving numerically the equations of motion of the swimmer driven by the trial interpolated stroke. The good match we obtain between experimentally measured and numerically computed trajectories provides a first validation of our synthetic stroke. We further validate the procedure by studying the flow velocities induced in the surrounding fluid. We compare the experimentally measured flow fields with the corresponding quantities computed by solving numerically the Stokes equations for the fluid flow, in which the forcing is provided by the synthetic stroke, and find good matching. Finally, we use the synthetic stroke to derive a coarse-grained model of the flow field resolved in terms of a few dominant singularities. The far field is well approximated by a time-varying Stresslet, and we show that the average behavior of Euglena during one stroke is that of an off-axis puller. The reconstruction of the flow field closer to the swimmer body requires a more complex system of singularities. A system of two Stokeslets and one Rotlet, that can be loosely associated with the force exerted by the flagellum, the drag of the body, and a torque to guarantee rotational equilibrium, provides a good approximation.

摘要

纤细裸藻是一种单细胞生物,通过摆动一根前端鞭毛进行游动。我们研究了游动冲程中鞭毛所跨越的非平面波形以及它们在周围流体中产生的三维流动。从通过光学显微镜在游动的纤细裸藻细胞上获得的一小组按时间索引的图像开始,我们构建了冲程的数值插值。我们通过最小化(游泳者的)实验测量速度与由试验插值冲程驱动的游泳者运动方程数值求解所计算出的速度之间的差异,定义了一种最优插值(我们称之为合成冲程)。我们在实验测量轨迹和数值计算轨迹之间获得的良好匹配为我们的合成冲程提供了首次验证。我们通过研究周围流体中诱导的流速进一步验证了该过程。我们将实验测量的流场与通过数值求解流体流动的斯托克斯方程所计算出的相应量进行比较,其中强迫项由合成冲程提供,并发现了良好的匹配。最后,我们使用合成冲程来推导一个基于少数主导奇点解析的流场粗粒化模型。远场可以很好地用一个随时间变化的应力子近似,并且我们表明纤细裸藻在一次冲程中的平均行为是离轴拉拽体的行为。更靠近游泳者身体的流场重建需要一个更复杂的奇点系统。一个由两个斯托克斯子和一个旋转子组成的系统,它可以大致与鞭毛施加的力、身体阻力以及保证旋转平衡的扭矩相关联,提供了一个很好的近似。

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