论文标题

具有独特双线分子标记速度计的低温螺旋管流动设施

A cryogenic-helium pipe flow facility with unique double-line molecular tagging velocimetry capability

论文作者

Sanavandi, Hamid, Bao, Shiran, Zhang, Yang, Keijzer, Ruben, Guo, Wei, Cattafesta III, Lou N.

论文摘要

低温氦4具有极小的动力学粘度,这使其成为紧凑型实验室设备中高雷诺($ re $)数量湍流研究的有前途的材料。在其超氟阶段(He II)中,氦具有非凡的传热能力,并已用于各种科学和工程应用中。为了释放在湍流研究中氦气的全部潜力,并提高了我们对HE II中传热机制的理解,需要定量研究氦气热传递过程的流动设施。在这里,我们报告了组装和测试独特的氦气流动设施方面的工作,该设施结合了一种新型的双线分子跟踪速度法(DL-MTV)系统。这种流动设施使我们能够以$ re $ $ $ $ $ 10^7 $产生湍流流量,并且也可以适应以在He II中产生热诱导的逆流。 DL-MTV系统基于两个平行薄的He $^*_ 2 $分子示踪线的生成和跟踪,具有可调节的分离距离,使我们不仅可以测量速度曲线,还可以测量横向和纵向空间速度结构函数。我们还向流管上安装了递延压力传感器,以进行压降测量。提供了流动设施和测量设备的测试结果。我们讨论了该设施如何使我们能够在氦气热传输主题区域解决一些出色的问题。

Cryogenic helium-4 has extremely small kinetic viscosity, which makes it a promising material for high Reynolds ($Re$) number turbulence research in compact laboratory apparatuses. In its superfluid phase (He II), helium has an extraordinary heat transfer capability and has been utilized in various scientific and engineering applications. In order to unlock the full potential of helium in turbulence research and to improve our understanding of the heat transfer mechanism in He II, a flow facility that allows quantitative study of helium heat-and-mass transfer processes is needed. Here we report our work in assembling and testing a unique helium pipe flow facility that incorporates a novel double-line molecular tracking velocimetry (DL-MTV) system. This flow facility allows us to generate turbulent pipe flows with $Re$ above $10^7$, and it can also be adapted to produce heat-induced counterflow in He II. The DL-MTV system, which is based on the generation and tracking of two parallel thin He$^*_2$ molecular tracer lines with an adjustable separation distance, allows us to measure not only the velocity profile but also both the transverse and longitudinal spatial velocity structure functions. We have also installed a deferential pressure sensor to the flow pipe for pressure drop measurement. The testing results of the flow facility and the measurement devices are presented. We discuss how this facility will allow us to solve some outstanding problems in the helium heat-and-mass transfer topic area.

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