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微尺度下剪切驱动和压力驱动液晶流动的研究:一种用于流量测量的定量方法。

Investigation of Shear-Driven and Pressure-Driven Liquid Crystal Flow at Microscale: A Quantitative Approach for the Flow Measurement.

作者信息

Zhu Jianqin, Tang Runze, Chen Yu, Yin Shuai, Huang Yi, Wong Teckneng

机构信息

National Key Laboratory of Science and Technology on Aero-Thermodynamics, School of Energy and Power Engineering, Beihang University, Beijing 100083, China.

School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang, Avenue, Singapore 639798, Singapore.

出版信息

Micromachines (Basel). 2020 Dec 29;12(1):28. doi: 10.3390/mi12010028.

Abstract

The liquid crystal-based method is a new technology developed for flow visualizations and measurements at microscale with great potentials. It is the priority to study the flow characteristics before implementation of such a technology. A numerical analysis has been applied to solve the simplified dimensionless two-dimensional Leslie-Ericksen liquid crystal dynamic equation. This allows us to analyze the coupling effect of the LC's director orientation and flow field. We will be discussing two classic shear flow cases at microscale, namely Couette and Poiseuille flow. In both cases, the plate drag speed in the state of Couette flow are varied as well as the pressure gradients in Poiseuille flow state are changed to study their effects on the flow field distributions. In Poiseuille flow, with the increase of applied pressure gradient, the influence of backflow significantly affects the flow field. Results show that the proposed method has great advantages on measurement near the wall boundaries which could complement to the current adopted flow measurement technique. The mathematical model proposed in this article could be of great potentials in the development of the quantitatively flow measurement technology.

摘要

基于液晶的方法是一种为微尺度流动可视化和测量而开发的新技术,具有很大的潜力。在实施这种技术之前,研究流动特性是首要任务。已应用数值分析来求解简化的无量纲二维莱斯利 - 埃里克森液晶动力学方程。这使我们能够分析液晶指向矢方向与流场的耦合效应。我们将讨论微尺度下的两种经典剪切流情况,即库埃特流和泊肃叶流。在这两种情况下,改变库埃特流状态下的平板拖动速度以及泊肃叶流状态下的压力梯度,以研究它们对流场分布的影响。在泊肃叶流中,随着施加压力梯度的增加,回流的影响显著影响流场。结果表明,所提出的方法在壁边界附近的测量方面具有很大优势,可以补充当前采用的流量测量技术。本文提出的数学模型在定量流量测量技术的发展中可能具有很大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/161b/7823904/3a1594469364/micromachines-12-00028-g001.jpg

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