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激光加热液体层驱动的对流传热。

Convection flows driven by laser heating of a liquid layer.

机构信息

University of Bordeaux, LOMA, UMR 5798, F-33400 Talence, France and CNRS, LOMA, UMR 5798, F-33400 Talence, France.

出版信息

Phys Rev E. 2016 Feb;93(2):023112. doi: 10.1103/PhysRevE.93.023112. Epub 2016 Feb 23.

Abstract

When a fluid is heated by the absorption of a continuous laser wave, the fluid density decreases in the heated area. This induces a pressure gradient that generates internal motion of the fluid. Due to mass conservation, convection eddies emerge in the sample. To investigate these laser-driven bulk flows at the microscopic scale, we built a setup to perform temperature measurements with a fluorescent-sensitive dye on the one hand, and measured the flow pattern at different beam powers, using a particle image velocimetry technique on the other hand. Temperature measurements were also used in numerical simulations in order to compare predictions to the experimental velocity profiles. The combination of our numerical and experimental approaches allows a detailed description of the convection flows induced by the absorption of light, which reveals a transition between a thin and a thick liquid layer regime. This supports the basis of optothermal approaches for microfluidic applications.

摘要

当流体通过吸收连续激光波而被加热时,加热区域内的流体密度会降低。这会产生压力梯度,从而引起流体的内部运动。由于质量守恒,样品中会出现对流涡旋。为了在微观尺度上研究这些由激光驱动的整体流动,我们建立了一个设置,一方面使用荧光敏感染料进行温度测量,另一方面使用粒子图像测速技术测量不同光束功率下的流动模式。温度测量也用于数值模拟,以便将预测与实验速度分布进行比较。我们的数值和实验方法的结合允许对由光吸收引起的对流流动进行详细描述,这揭示了薄液层和厚液层两种状态之间的转变。这为微流控应用中的光热方法提供了基础。

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