Experimental study of the cavitation noise and vibration induced by the choked flow in a Venturi reactor

•The shedding mechanisms of cavitating chokd flow in Venturi reactor are distinguished and analyzed by POD.•The cavitation performance of choked flow are systematically illustrated.•The spectral analysis of pressure pulsation, noise and vibration are systematically analyzed. In this paper, the cavit...

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Veröffentlicht in:Ultrasonics sonochemistry 2020-10, Vol.67, p.105183-105183, Article 105183
Hauptverfasser: Xu, Shuangjie, Wang, Jiong, Cheng, Huaiyu, Ji, Bin, Long, Xinping
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Sprache:eng
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Zusammenfassung:•The shedding mechanisms of cavitating chokd flow in Venturi reactor are distinguished and analyzed by POD.•The cavitation performance of choked flow are systematically illustrated.•The spectral analysis of pressure pulsation, noise and vibration are systematically analyzed. In this paper, the cavitation performance and corresponding pressure pulsation, noise and vibration induced by the choked cavitating flow in a Venturi reactor are investigated experimentally under different cavitation conditions by using high-speed camera and high frequency sensors. Based on the instantaneous continuous cavitation images, the Proper Orthogonal Decomposition (POD), a tool to analyze the large-scale cavitation flow structure, is applied to investigate the choked cavitating flow dynamics. The POD results show that two mechanisms, re-entrant jet flow mechanism and shock wave mechanism, govern the shedding and collapse of cavitation cloud at different pressure ratios. These mechanisms contribute to the variation of pressure pulsation, noise and vibration at different pressure ratios. The pressure pulsation spectrum behaves differently in various cavitation regions induced by the choked cavitating flow. Due to the existence of low pressure in re-entrant region, the influence of high frequency fluctuation on pressure pulsation caused by re-entrant flow is small. Moreover, with the increase of pressure ratio, the induced noise and vibration intensity decreases gradually, then increases and reaches a maximum value. Finally, it drops to a low and stable level. Despite different inlet pressures, the intensity of cavitation noise and vibration reaches the maximum value at the same pressure ratio. Specifically, the FFT analysis of noise and vibration signals indicates that low frequency component prevails at small pressure ratio owing to the re-entrant jet mechanism, while high frequency component prevails at large pressure ratio owing to the shock wave mechanism. The relationship between the choked cavitation dynamics and the induced pressure pulsation, noise and vibration in the Venturi reactor is highlighted. The results can provide guidance for the optimal operation condition of the Venturi reactor for cavitation applications such as water treatment.
ISSN:1350-4177
1873-2828
DOI:10.1016/j.ultsonch.2020.105183