论文标题

流体动力耦合融化声学上的晶筏

Hydrodynamic Coupling Melts Acoustically Levitated Crystalline Rafts

论文作者

Wu, Brady, VanSaders, Bryan, Lim, Melody X., Jaeger, Heinrich M.

论文摘要

小颗粒的声悬浮提供了一个多功能平台,以研究在存在流体动力偶联的情况下自组装多体系统的集体动力学特性。但是,声学散射力只能在悬浮平面的近距离上产生有吸引力的相互作用,从而将自组装限制在颗粒进入直接,耗散,接触的筏上。在这里,我们通过使用足够小的颗粒来克服这一局限性,以使空气的粘度在近距离建立排斥的流流。通过调谐粒子的大小相对于粘性流的特征长度尺度,我们控制着有吸引力和排斥力之间的相互作用。在这个新颖的颗粒筏中,颗粒形成一个带有可调间距的开放式晶格。颗粒之间的流体动力耦合会导致晶格中的自发激发,进而驱动间歇性颗粒重排。在这些波动的作用下,筏从主要静止的晶体结构转变为二维液体状状态。我们表明,这种过渡的特征是动态异质性和间歇性以及合作的粒子运动,它们产生了有效的“无odeless”晶体。这些发现揭示了流体偶联驱动的激发,这些激发在许多其他流体动力系统中很难分离和控制。

The acoustic levitation of small particles provides a versatile platform to investigate the collective dynamical properties of self-assembled many-body systems in the presence of hydrodynamic coupling. However, acoustic scattering forces can only generate attractive interactions at close range in the levitation plane, limiting self-assembly to rafts where particles come into direct, dissipative, contact. Here, we overcome this limitation by using particles small enough that the viscosity of air establishes a repulsive streaming flow at close range. By tuning the size of particles relative to the characteristic length scale of the viscous flow, we control the interplay between attractive and repulsive forces. In this novel granular raft, particles form an open lattice with tunable spacing. Hydrodynamic coupling between particles gives rise to spontaneous excitations in the lattice, in turn driving intermittent particle rearrangements. Under the action of these fluctuations, the raft transitions from a predominantly quiescent, crystalline structure, to a two-dimensional liquid-like state. We show that this transition is characterized by dynamic heterogeneity and intermittency, as well as cooperative particle movements, that produce an effectively `cageless' crystal. These findings shed light on fluid-coupling driven excitations that are difficult to isolate and control in many other hydrodynamic systems.

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