首页> 外文会议>ASME Fluids Engineering Division summer conference;FEDSM2009 >MOLECULAR TAGGING TECHNIQUES FOR MICRO-FLOW AND MICRO-SCALE HEAT TRANSFER STUDIES
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MOLECULAR TAGGING TECHNIQUES FOR MICRO-FLOW AND MICRO-SCALE HEAT TRANSFER STUDIES

机译:用于微流和微尺度传热研究的分子标记技术

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We report recent progresses made in development of novel molecule-based flow diagnostic techniques, named as Molecular Tagging techniques, to achieve simultaneous measurements of multiple important flow variables (such as flow velocity and temperature) for micro-flows and micro-scale heat transfer studies. Instead of using tiny particles, specially-designed phosphorescent molecules, which can be turned into long-lasting glowing molecules upon excitation by photons of appropriate wavelength, are used as tracers for both velocity and temperature measurements. A pulsed laser is used to "tag" the tracer molecules in the regions of interest, and the movements of the tagged molecules are imaged at two successive times within the photoluminescence lifetime of the tracer molecules. The measured Lagrangian displacement of the tagged molecules between the two image acquisitions provides the estimate of the fluid velocity vector. The simultaneous temperature measurement is achieved by taking advantage of the temperature dependence of phosphorescence lifetime, which is estimated from the intensity ratio of the tagged molecules in the two images. The implementation and application of the MTV&T technique are demonstrated by conducting simultaneous velocity and temperature measurements to qunatify the transient behavior of electroosmotic flow (EOF) inside a microchannel and to reveal the unsteady heat transfer, mass transfer and phase changing process inside micro-sized water droplets pertinent to wind turbine icing phenomena.
机译:我们报告了在新型基于分子的流动诊断技术(称为分子标记技术)的开发方面取得的最新进展,以实现对多个重要流动变量(例如流速和温度)的同时测量,以进行微流和微尺度传热研究。专门设计的磷光分子可以用作速度和温度测量的示踪剂,而无需使用微小的颗粒,而是可以通过适当波长的光子激发而变成持久发光的分子。使用脉冲激光在感兴趣区域中“标记”示踪分子,并且在示踪分子的光致发光寿命内连续两个时间对标记分子的运动成像。在两个图像采集之间所测量的标记分子的拉格朗日位移提供了流体速度矢量的估计。通过利用磷光寿命的温度依赖性来实现同时的温度测量,磷光寿命是根据两个图像中标记分子的强度比估算的。通过同时进行速度和温度测量来验证微通道内部电渗流(EOF)的瞬态行为,并揭示微尺寸水内部的不稳定传热,传质和相变过程,从而证明了MTV&T技术的实现和应用。与风力发电机的结冰现象有关的液滴。

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