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Setting the pace of microswimmers: when increasing viscosity speeds up self-propulsion

机译:设定微泳者的步伐:增加粘度可加快自推进速度

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It has long been known that some microswimmers seem to swim counter-intuitively faster when the viscosity of the surrounding fluid is increased, whereas others slow down. This conflicting dependence of the swimming velocity on the viscosity is poorly understood theoretically. Here we explain that any mechanical microswimmer with an elastic degree of freedom in a simple Newtonian fluid can exhibit both kinds of response to an increase in the fluid viscosity for different viscosity ranges, if the driving is weak. The velocity response is controlled by a single parameter Γ, the ratio of the relaxation time of the elastic component of the swimmer in the viscous fluid and the swimming stroke period. This defines two velocity–viscosity regimes, which we characterize using the bead-spring microswimmer model and analyzing the different forces acting on the parts of this swimmer. The analytical calculations are supported by lattice-Boltzmann simulations, which accurately reproduce the two velocity regimes for the predicted values of Γ.
机译:早就知道,当周围流体的粘度增加时,某些微游泳者似乎会反直觉地更快地游泳,而另一些则慢下来。理论上很难理解游泳速度对粘度的这种相互矛盾的依赖关系。在这里,我们解释说,如果驱动力较弱,则在简单的牛顿流体中具有弹性自由度的任何机械微泳器都可以在不同粘度范围内表现出两种对流体粘度增加的响应。速度响应受单个参数Γ的控制,即粘性流体中游泳者弹性组件的松弛时间与游泳行程周期之比。这定义了两个速度-粘度状态,我们使用珠-弹簧微游泳器模型来表征,并分析作用在该游泳者各个部位上的不同力。分析计算得到晶格-玻尔兹曼(Boltzmann)模拟的支持,该模拟精确地再现了Γ的预测值的两个速度范围。

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