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Shock wave attenuation in a micro-channel

机译:微通道中的冲击波衰减

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摘要

This work presents optical measurements of shock wave attenuation in a glass micro-channel. This transparent facility, with a cross section ranging from 1 mm x 150 mu m to 1 mm x 500 mu m, allowed for the use of high-speed schlieren videography to visualize the propagation of a shock wave within the entire micro-channel and to quantify velocity attenuation of the wave due to wall effects. In this paper, we present the experimental technique and the relevant data treatment we have used to increase the sensitivity of shock wave detection. Then, we compared our experimental results for different channel widths, lengths, and shock wave velocities with the analytical model for shock attenuation proposed by Russell (J Fluid Mech 27(2):305-314, 1967), which assumes laminar flow, and by Mirels (Attenuation in a shock tube due to unsteady-boundary-layer action, NACA Report 1333, 1957) for turbulent flow. We found that these models are inadequate to predict the observed data, owing to the presence of fully developed flow which violates the basic assumption of these models. The data are also compared with the empirical shock attenuation models proposed by Zeitoun (Phys Fluids 27(1):011701, 2015) and Deshpande and Puranik (Shock Waves 26(4):465-475, 2016), where better agreement is observed. Finally, we presented experimental data for the flow field behind the shock wave from measurements of the Mach wave angle which shows globally decreasing flow Mach numbers due to viscous wall effects.
机译:该工作介绍了玻璃微通道中的冲击波衰减光学测量。这种透明设施,横截面从1 mm x 150 mu m m到1 mm x 500 mu m,允许使用高速Schlieren摄像机来可视化整个微通道内的冲击波传播和到量化墙壁效应引起的波的速度衰减。在本文中,我们介绍了我们用来提高冲击波检测灵敏度的实验技术和相关数据处理。然后,我们将我们的实验结果与罗素提出的冲击衰减的分析模型进行了比较了不同的通道宽度,长度和冲击波速度(J Fluid Mech 27(2):305-314,1967),这假设层流,和通过菲尔尔(由于非稳定边界层动作而导致的冲击管中的衰减,Naca报告1333,1957)用于湍流。我们发现,由于存在完全发育的流量,这些模型不充分地预测观察到的数据,这是违反了这些模型的基本假设的完全发育的流量。还将数据与Zeitoun提出的经验冲击衰减模型进行了比较(物理液27(1):011701,2015)和Deshpande和Puranik(冲击波26(4):465-475,2016),其中观察到更好的协议。最后,我们向冲击波后面的流场提出了从马赫波角的测量显示的实验数据,其表示由于粘性壁效应而导致的全局降低的流动马赫数。

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