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Molecular tagging velocimetry and thermometry and its application to the wake of a heated circular cylinder

机译:分子标记测速和测温技术及其在加热圆柱体中的应用

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We report improvements to the molecular tagging velocimetry and thermometry (MTV&T) technique for the simultaneous measurement of velocity and temperature fields in fluid flows. A phosphorescent molecule, which can be turned into a long lifetime tracer upon excitation by photons of appropriate wavelength, is used as a tracer for both velocity and temperature measurements. A pulsed laser is used to 'tag' the regions of interest, and those tagged regions are imaged at two successive times within the lifetime of the tracer molecules. The measured Lagrangian displacement of the tagged molecules 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. In relation to the original molecular tagging thermometry work of Thompson and Maynes (2001 J. Fluid Eng. 123 293-302), the improvements reported here are the use of lifetime imaging as a ratiometric method to enhance the robustness and accuracy of temperature measurements and the extension of the technique to simultaneous whole-field planar mapping of velocity and temperature fields. Compared with other simultaneous velocity and temperature measurement techniques such as combined PIV-LIF (Sakakibara et al 1997 Int. J. Heat Mass Transfer 40 3163-76, Grissino et al 1999 Proc. 3rd Int. Workshop on Particale Image Velocimetry (Santa Barbara, CA, USA, 16-18 September 1999)) and the DPIV/T technique (Park et al 2001 Exp. Fluids 30 327-38), this method accomplishes the same objectives but with a completely molecular-based approach. Because of its molecular nature, issues such as tracking of the flow by the seed particles and the thermal response of the thermal tracer particles are eliminated. In addition, the use of a single molecular tracer and a dual-frame CCD camera provides for a much reduced burden on the instrumentation and experimental set-up. The implementation and application of the new technique are demonstrated by conducting simultaneous velocity and temperature measurements in the wake region of a heated circular cylinder at a Richardson number of 0.36, a value large enough for the buoyancy effects to potentially influence the flow.
机译:我们报告了分子标记测速和测温(MTV&T)技术的改进,用于同时测量流体流动中的速度和温度场。磷光分子可以通过适当波长的光子激发后变成长寿命的示踪剂,同时用作速度和温度测量的示踪剂。使用脉冲激光来“标记”感兴趣的区域,并且在示踪分子的寿命内连续两个时间对那些标记的区域成像。测得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。关于Thompson和Maynes(2001 J. Fluid Eng。123 293-302)的原始分子标记测温工作,此处报告的改进是使用寿命成像作为比率方法来增强温度测量的鲁棒性和准确性,以及将该技术扩展到速度场和温度场的同时全场平面映射。与其他同时进行的速度和温度测量技术(例如组合的PIV-LIF(Sakakibara等,1997 Int.J.传热传质40 3163-76,Grissino等1999,Proc.3rd Int.Workshop on Particale Image Velocimetry(Santa Barbara,美国加利福尼亚州,1999年9月16日至18日)和DPIV / T技术(Park等,2001 Exp。Fluids 30 327-38),该方法实现了相同的目标,但采用了完全基于分子的方法。由于其分子性质,消除了诸如种子粒子跟踪流动和热示踪剂粒子的热响应之类的问题。此外,使用单个分子示踪剂和双帧CCD照相机可大大减少仪器和实验装置的负担。通过在加热的圆柱体的尾流区域同时进行理查森数为0.36的速度和温度测量,证明了该新技术的实现和应用,该值的大小足以使浮力效应潜在地影响流量。

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