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射流泵非定常空化噪声诱发特性研究

Research on Noise-Induced Characteristics of Unsteady Cavitation of a Jet Pump.

作者信息

Gan Jian, Zhang Kang, Wang Deming

机构信息

Key Laboratory of Gas and Fire Control for Coal Mines, School of Safety Engineering, China University of Mining & Technology, Xuzhou 221116, China.

出版信息

ACS Omega. 2022 Apr 1;7(14):12255-12267. doi: 10.1021/acsomega.2c00684. eCollection 2022 Apr 12.

Abstract

The dynamic cavitation characteristics of normal-temperature water flowing through a transparent jet pump under different cavitation conditions were experimentally studied by adjusting the pressure ratio. The common results are presented at different pressure ratios, including the temporal and spatial changes of the pressure and noise, together with the visual observation of the cavitation unsteady behaviors using a high-speed camera. The analyses on the measured data and images reveal that the cavitation cloud is generated by periodic oscillations of the jet traveling pressure wave and the bubble traveling pressure wave. The oscillation of the two kinds of interface waves is caused by the collapse of the bubbles, which is the main mechanism of the bubble cloud shedding. As the pressure ratio increases, the maximum length of the jet cloud and bubble cloud linearly decreases, while their oscillation frequency increases gradually. Combined with the cavitation-cloud visualization data and noise frequency analysis, it is proposed that the strong impact between the jet traveling pressure wave and the bubble traveling pressure wave is the main cause of noise. Specially, the acoustic pressure reaches the maximum when the oscillation frequency of the jet traveling pressure wave is the same as that of the bubble traveling pressure wave. Also, the jet traveling pressure wave has a great influence on the migration of bubbles in the cavity. The results can provide guidance for the optimal operating condition in cavitation applications such as jet aerator and quantitative addition.

摘要

通过调节压力比,对常温水流经透明喷射泵在不同空化条件下的动态空化特性进行了实验研究。给出了不同压力比下的常见结果,包括压力和噪声的时空变化,以及使用高速相机对空化非定常行为的可视化观察。对测量数据和图像的分析表明,空化云是由射流传播压力波和气泡传播压力波的周期性振荡产生的。两种界面波的振荡是由气泡的坍塌引起的,这是气泡云脱落的主要机制。随着压力比的增加,射流云和气泡云的最大长度线性减小,而它们的振荡频率逐渐增加。结合空化云可视化数据和噪声频率分析,提出射流传播压力波与气泡传播压力波之间的强烈冲击是产生噪声的主要原因。特别地,当射流传播压力波的振荡频率与气泡传播压力波的振荡频率相同时,声压达到最大值。此外,射流传播压力波对腔内气泡的迁移有很大影响。研究结果可为射流曝气器和定量添加等空化应用中的最佳运行条件提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3733/9016847/e32348f8f77b/ao2c00684_0002.jpg

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