阻力
层流
机械
粘度
雷诺数
磁流体
流量(数学)
寄生阻力
微流控
缩放比例
阻力系数
润滑
材料科学
物理
纳米技术
热力学
磁场
湍流
几何学
量子力学
数学
作者
Arvind Arun Dev,Peter Dunne,Thomas M. Hermans,Bernard Doudin
出处
期刊:Langmuir
[American Chemical Society]
日期:2022-01-04
卷期号:38 (2): 719-726
被引量:13
标识
DOI:10.1021/acs.langmuir.1c02617
摘要
The frictional forces of a viscous liquid flow are a major energy loss issue and severely limit microfluidics practical use. Reducing this drag by more than a few tens of percent remain elusive. Here, we show how cylindrical liquid-in-liquid flow leads to drag reduction of 60-99% for sub-mm and mm-sized channels, regardless of whether the viscosity of the transported liquid is larger or smaller than that of the confining one. In contrast to lubrication or sheath flow, we do not require a continuous flow of the confining lubricant, here made of a ferrofluid held in place by magnetic forces. In a laminar flow model with appropriate boundary conditions, we introduce a modified Reynolds number with a scaling that depends on geometrical factors and viscosity ratio of the two liquids. It explains our whole range of data and reveals the key design parameters for optimizing the drag reduction values. Our approach promises a new route for microfluidics designs with pressure gradient reduced by orders of magnitude.
科研通智能强力驱动
Strongly Powered by AbleSci AI