孔型喷嘴中气蚀云的脱落

Fluids Pub Date : 2024-07-05 DOI:10.3390/fluids9070156
Taihei Onishi, Kaizheng Li, Hong Ji, Guoyi Peng
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摘要

本文以孔型喷嘴喷出的空化水流在浸没状态下的非稳态特性为研究对象,结合高速摄像观测和流动模拟方法,对空化云脱落的周期性以及空化云形成和释放的机理进行了基础研究。通过分析高速摄像机拍摄的序列图像,评估了空化云脱落的规律,并通过比较流动可视化和数值模拟的结果,进一步研究了空化云形成和释放的机理。结果表明,由前导云和后续云组成的一对环状云团依次向下游脱落,这一过程周期性重复。前导云主要由沿喷嘴出口壁的剪切涡流分裂而成,而后续云则由一个完全扩展的空腔断裂时产生的再入射流分离。随后的空化云捕捉到前导云,并在两个主要频率范围内凝聚在一起。 从喷嘴下游脱落的空化云有两个主要频率。前导空化云脱落的斯特劳哈尔数在 0.21 到 0.29 之间变化,与喷射压力相对应。在气蚀作用下,质量流量系数在与前导气蚀云脱落频率相同的范围内波动。
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Shedding of Cavitation Clouds in an Orifice Nozzle
Focused on the unsteady property of a cavitating water jet issuing from an orifice nozzle in a submerged condition, this paper presents a fundamental investigation of the periodicity of cloud shedding and the mechanism of cavitation cloud formation and release by combining the use of high-speed camera observation and flow simulation methods. The pattern of cavitation cloud shedding is evaluated by analyzing sequence images from a high-speed camera, and the mechanism of cloud formation and release is further examined by comparing the results of flow visualization and numerical simulation. It is revealed that one pair of ring-like clouds consisting of a leading cloud and a subsequent cloud is successively shed downstream, and this process is periodically repeated. The leading cloud is principally split by a shear vortex flow along the nozzle exit wall, and the subsequent cloud is detached by a re-entrant jet generated while a fully extended cavity breaks off. The subsequent cavitation cloud catches the leading one, and they coalesce over the range of . Cavitation clouds shed downstream from the nozzle at two dominant frequencies. The Strouhal number of the leading cavitation cloud shedding varies from 0.21 to 0.29, corresponding to the injection pressure. The mass flow rate coefficient fluctuates within the range of at the same frequency as the leading cloud shedding under the effect of cavitation.
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