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Experimental and computational analysis of periodic flow structure in oscillatory gas flow meters

机译:振荡气体流量计中周期性流动结构的实验和计算分析

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The oscillatory characteristics and dynamic structure of periodic flow in an oscillatory gas flow meter were studied experimentally and numerically. The flow oscillations were triggered by the Coanda effect and an universal correlation between Strouhal number and Reynolds number, Str = 1.09 x 10(-3) for Re-HD > 800, was deduced based on spectral analysis of the pressure fluctuations in the flow channel. Numerical Simulation indicated that the evolution of the flow patterns was classified into stages of induction and sustainable periodic oscillation. The transformation between the two stages was noticeably affected by the design of the feedback channels. The results further revealed that the development of the main vortex in the oscillating chamber and the small vortices at the entrance of the feedback channels concurrently modulate the mechanism of oscillation. The small vortices located at both entrances of the feedback channels play the role of a pair of modulating valves, which alternatively switch on and off the bypass flow through each feedback channel, thus reinforcing the periodic oscillation.
机译:对振荡气体流量计中的周期性流动的振荡特性和动态结构进行了实验和数值研究。流的振荡是由柯恩达效应触发的,并且基于流道压力波动的频谱分析,推导了Strouhal数与雷诺数之间的通用相关性,对于Re-HD> 800,Str = 1.09 x 10(-3) 。数值模拟表明,流动模式的演变分为诱导阶段和持续周期性振荡阶段。反馈通道的设计显着影响了两个阶段之间的转换。结果进一步表明,振荡腔中主旋涡的发展和反馈通道入口处的小涡旋同时调节了振荡机理。位于反馈通道两个入口的小涡流起着一对调节阀的作用,它们交替地打开和关闭通过每个反馈通道的旁通流,从而增强了周期性振荡。

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