由高原-雷利不稳定性引发的光纤长距离液体传输

Yunqiao Huang, Xianguo Li, Zhongchao Tan
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引用次数: 0

摘要

纤维上的液体流动性对面罩、集水和气溶胶过滤中纤维基质的有效性至关重要,但通常会受到高原-雷利不稳定性的影响。然而,由这种不稳定性引起的前体薄膜内的自发流动在很大程度上被忽视了,特别是其基本流动模式和液体移动的潜力。本研究揭示了带状纤维上的自发流动在增强液体传输中的关键作用。这些纤维的非轴对称曲率诱发了长波不稳定性,产生了持续流,使薄膜以每秒几毫米的速度在厘米级距离上进行传输。利用粒子图像显微测量法,我们发现了错综复杂的流体力学,包括薄膜内的对向流动和剪切层中的有组织涡流,这些都是由液体-蒸汽界面上的毛细管效应驱动的。基于这些见解,我们展示了一种能够在 10 平方厘米面积上实现平面液体传输的网络结构。与仿生结构和空气动力推进相比,所研究的带状纤维具有最长的传输距离。纤维矩阵独特的传输动力学和平面构造为基于纤维的先进液体传输系统提供了巨大的潜力,并增强了传质/传热、层流混合和空气动力特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Long-distance Liquid Transport Along Fibers Arising From Plateau-Rayleigh Instability
Liquid mobility on fibers is critical to the effectiveness of fiber matrices in face masks, water harvesting and aerosol filtration, but is typically affected by Plateau-Rayleigh instability. However, the spontaneous flow within precursor films arising from this instability has been largely overlooked, particularly regarding its fundamental flow pattern and the potential for liquid mobilization. This study reveals the pivotal role of spontaneous flow on ribbon-like fibers in enhancing liquid transport. The non-axisymmetric curvature of these fibers induces long-wave instabilities, generating a sustained flow that enables film-wise transport over centimeter-scale distances at velocities of several millimeters per second. Using particle-image velocimetry, we uncover intricate hydrodynamics, including opposing flows within the film and organized vortices in the shear layer, driven by capillary effects at the liquid-vapor interfaces. Building on these insights, we demonstrate a network structure capable of achieving planar liquid transport over a 10 cm2 area. The ribbon-like fibers investigated exhibit the longest transport distances relative to biomimetic structures and aerodynamic propulsion. The unique transport dynamics and planar configuration of the fiber matrix offer substantial potential for advanced fiber-based liquid transport systems, with enhanced mass/heat transfer, laminar mixing and aerodynamic characteristics.
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