论文标题
3D活性流体中的限制引起的自动泵
Confinement-induced Self-Pumping in 3D Active Fluids
论文作者
论文摘要
二维活性流体在减小限制几何形状的尺寸后显示出从湍流到相干流的过渡。最近的一个实验表明,三个维度的行为截然不同。在\ emph {增加}限制宽度时,出现从湍流到连贯性的过渡。使用延伸杆状单元悬架的简单流体动力学模型,我们为这种令人困惑的行为提供了理论解释。此外,使用理论参数支持的广泛数值模拟,我们绘制出导致连贯流的条件,并阐明限制通道的纵横比起的关键作用。我们确定的机制适用于大量的对称性和推进机制,从而导致了一组统一的设计原理,用于自动泵3D活性流体。
Two dimensional active fluids display a transition from turbulent to coherent flow upon decreasing the size of the confining geometry. A recent experiment suggests that the behavior in three dimensions is remarkably different; emergent flows transition from turbulence to coherence upon \emph{increasing} the confinement height to match the width. Using a simple hydrodynamic model of a suspension of extensile rod-like units, we provide the theoretical explanation for this puzzling behavior. Furthermore, using extensive numerical simulations supported by theoretical arguments, we map out the conditions that lead to coherent flows and elucidate the critical role played by the aspect ratio of the confining channel. The mechanism that we identify applies to a large class of symmetries and propulsion mechanisms, leading to a unified set of design principles for self-pumping 3D active fluids.