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Synchronization of rotating helices by hydrodynamic interactions

机译:流体动力相互作用使旋转螺旋同步

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Some types of bacteria use rotating helical flagella to swim. The motion of such organisms takes place in the regime of low Reynolds numbers where viscous effects dominate and where the dynamics is governed by hydrodynamic interactions. Typically, rotating flagella form bundles, which means that their rotation is synchronized. The aim of this study is to investigate whether hydrodynamic interactions can be at the origin of such a bundling and synchronization. We consider two stiff helices that are modelled by rigidly connected beads, neglecting any elastic deformations. They are driven by constant and equal torques, and they are fixed in space by anchoring their terminal beads in harmonic traps. We observe that, for finite trap strength, hydrodynamic interactions do indeed synchronize the helix rotations. The speed of phase synchronization decreases with increasing trap stiffness. In the limit of infinite trap stiffness, the speed is zero and the helices do not synchronize.
机译:某些类型的细菌使用旋转的螺旋鞭毛游泳。这种生物体的运动发生在低雷诺数的状态下,其中粘性作用占主导地位,并且动力学受流体动力相互作用控制。通常,旋转的鞭毛形成束,这意味着它们的旋转是同步的。这项研究的目的是研究流体动力相互作用是否可能是这种捆绑和同步的起源。我们考虑了两个刚性螺旋,它们由刚性连接的小珠建模,忽略了任何弹性变形。它们由恒定且相等的扭矩驱动,并且通过将其末端磁珠锚固在谐波陷阱中而固定在空间中。我们观察到,对于有限的圈闭强度,流体动力相互作用确实确实使螺旋旋转同步。相位同步的速度随着陷阱刚度的增加而降低。在无限陷波器刚度的极限中,速度为零,螺旋线不同步。

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