Axisymmetric thermoviscous and thermal expansion flows for microfluidics.

IF 1.4 4区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY
Journal of Engineering Mathematics Pub Date : 2025-01-01 Epub Date: 2025-04-25 DOI:10.1007/s10665-025-10445-8
Weida Liao, Eric Lauga
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引用次数: 0

Abstract

Recent microfluidic experiments have explored the precise positioning of micron-sized particles in liquid environments via laser-induced thermoviscous flow. From micro-robotics to biology at the subcellular scale, this versatile technique has found a broad range of applications. Through the interplay between thermal expansion and thermal viscosity changes, the repeated scanning of the laser along a scan path results in fluid flow and hence net transport of particles, without physical channels. Building on previous work focusing on two-dimensional microfluidic settings, we present an analytical, theoretical model for the thermoviscous and thermal expansion flows and net transport induced by a translating heat spot in three-dimensional, unconfined fluid. We first numerically solve for the temperature field due to a translating heat source in the experimentally relevant limit. Then, in our flow model, the small, localised temperature increase causes local changes in the mass density, shear viscosity and bulk viscosity of the fluid. We derive analytically the instantaneous flow generated during one scan and compute the net transport of passive tracers due to a full scan, up to quadratic order in the thermal expansion and thermal shear viscosity coefficients. We further show that the flow and transport are independent of bulk viscosity. In the far field, while the leading-order instantaneous flow is typically a three-dimensional source or sink, the leading-order average velocity of tracers is instead a source dipole, whose strength depends on the relative magnitudes of the thermal expansion and thermal shear viscosity coefficients. Our quantitative results reveal the potential for future three-dimensional net transport and manipulation of particles at the microscale.

微流体的轴对称热粘性流和热膨胀流。
最近的微流体实验探索了通过激光诱导热粘性流动在液体环境中精确定位微米级颗粒的方法。从微型机器人到亚细胞尺度的生物学,这种多功能技术已经找到了广泛的应用。通过热膨胀和热粘度变化之间的相互作用,激光沿着扫描路径的重复扫描导致流体流动,从而导致颗粒的净输运,而没有物理通道。在之前研究二维微流体的基础上,我们提出了一个三维无约束流体中由平移热斑引起的热粘性和热膨胀流动和净输运的分析理论模型。我们首先用数值方法求解了在实验相关极限下由于热源平移引起的温度场。然后,在我们的流动模型中,微小的局部温度升高会导致流体的质量密度、剪切粘度和体粘度的局部变化。我们解析地推导了一次扫描过程中产生的瞬时流量,并计算了一次全扫描时被动示踪剂的净输运,热膨胀和热剪切粘度系数高达二次阶。我们进一步表明,流动和输送与体粘度无关。在远场中,虽然示踪剂的前阶瞬时流通常是三维源或汇,但示踪剂的前阶平均速度是源偶极子,其强度取决于热膨胀和热剪切粘度系数的相对大小。我们的定量结果揭示了未来在微观尺度上三维净输运和粒子操纵的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Engineering Mathematics
Journal of Engineering Mathematics 工程技术-工程:综合
CiteScore
2.10
自引率
7.70%
发文量
44
审稿时长
6 months
期刊介绍: The aim of this journal is to promote the application of mathematics to problems from engineering and the applied sciences. It also aims to emphasize the intrinsic unity, through mathematics, of the fundamental problems of applied and engineering science. The scope of the journal includes the following: • Mathematics: Ordinary and partial differential equations, Integral equations, Asymptotics, Variational and functional−analytic methods, Numerical analysis, Computational methods. • Applied Fields: Continuum mechanics, Stability theory, Wave propagation, Diffusion, Heat and mass transfer, Free−boundary problems; Fluid mechanics: Aero− and hydrodynamics, Boundary layers, Shock waves, Fluid machinery, Fluid−structure interactions, Convection, Combustion, Acoustics, Multi−phase flows, Transition and turbulence, Creeping flow, Rheology, Porous−media flows, Ocean engineering, Atmospheric engineering, Non-Newtonian flows, Ship hydrodynamics; Solid mechanics: Elasticity, Classical mechanics, Nonlinear mechanics, Vibrations, Plates and shells, Fracture mechanics; Biomedical engineering, Geophysical engineering, Reaction−diffusion problems; and related areas. The Journal also publishes occasional invited ''Perspectives'' articles by distinguished researchers reviewing and bringing their authoritative overview to recent developments in topics of current interest in their area of expertise. Authors wishing to suggest topics for such articles should contact the Editors-in-Chief directly. Prospective authors are encouraged to consult recent issues of the journal in order to judge whether or not their manuscript is consistent with the style and content of published papers.
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