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多曲率粘性射流:流动拓扑和粒子操控。

Multicurvature viscous streaming: Flow topology and particle manipulation.

机构信息

Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801.

National Center for Supercomputing Applications, University of Illinois at Urbana-Champaign, Urbana, IL 61801.

出版信息

Proc Natl Acad Sci U S A. 2022 Sep 6;119(36):e2120538119. doi: 10.1073/pnas.2120538119. Epub 2022 Aug 29.

Abstract

Viscous streaming refers to the rectified, steady flows that emerge when a liquid oscillates around an immersed microfeature. Relevant to microfluidics, the resulting local, strong inertial effects allow manipulation of fluid and particles effectively, within short time scales and compact footprints. Nonetheless, practically, viscous streaming has been stymied by a narrow set of achievable flow topologies, limiting scope and application. Here, by moving away from classically employed microfeatures of uniform curvature, we experimentally show how multicurvature designs, computationally obtained, give rise, instead, to rich flow repertoires. The potential utility of these flows is then illustrated in compact, robust, and tunable devices for enhanced manipulation, filtering, and separation of both synthetic and biological particles. Overall, our mixed computational/experimental approach expands the scope of viscous streaming application, with opportunities in manufacturing, environment, health, and medicine, from particle self-assembly to microplastics removal.

摘要

粘性流指的是当液体围绕浸入的微结构振荡时出现的整流、稳定流动。与微流控相关,由此产生的局部、强惯性效应能够在短时间尺度和紧凑的足迹内有效地操纵流体和颗粒。尽管如此,实际上,粘性流受到可实现的流动拓扑结构的限制,限制了其范围和应用。在这里,我们通过远离经典使用的具有均匀曲率的微结构,实验证明了如何通过计算获得的多曲率设计,反而会产生丰富的流动曲目。然后,我们在紧凑、稳健和可调的设备中展示了这些流动的潜在实用性,用于增强对合成和生物颗粒的操纵、过滤和分离。总的来说,我们的混合计算/实验方法扩展了粘性流应用的范围,在制造、环境、健康和医学等领域都有机会,从颗粒自组装到去除微塑料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b210/9457255/fcf3860044e5/pnas.2120538119fig01.jpg

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