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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Shear Cavitation in an Annular Jet Pump Under Recirculation Conditions
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Shear Cavitation in an Annular Jet Pump Under Recirculation Conditions

机译:循环条件下环形射流泵的剪切空化

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Recirculation accompanied by shear cavitation is a key flow feature in annular jet pumps (AJPs). In this study, a high-speed camera was used to capture the recirculation region and various types of cavity clouds. By monitoring the trajectories of the small bubbles, the main recirculation regions under each flow rate ratio were obtained. As the flow rate ratio decreases, the recirculation region continued expanding with the separation point moving upstream, while the reattachment point remained nearly stationary regardless of the decreasing flow rate ratio. Hill's spherical vortex theory was adopted to evaluate the variations of the recirculation regions. Moreover, the minimum local static wall pressure in the recirculation region decreases as well, which can promote the inception and development of shear cavitation. There are numerous vortices simultaneously induced by the large velocity gradient in the shear layer, the core of which becomes a potential site for cavitation. Consequently, with the growth of the recirculation region, three types of cavity clouds, viz., the ribbonlike, annular, and merged cavity clouds, appear in turn. The movement characteristics of these cavity clouds, including their inception, distortion, and collapse, are illustrated based on the high-speed imaging results. The ribbonlike and annular cavity clouds are both induced by the small vortices in the shear layer because of the low local pressure in the vortex core. However, the merged cavity clouds are caused by a combination of several ribbonlike and annular cavity clouds, which provides a larger scale and a longer life span. Hence, the collapse of the merged cavity clouds can cause a large pressure pulsation near the reattachment point of the recirculation region. The corresponding frequency spectra were also demonstrated based on the fast Fourier transform (FFT) method.
机译:伴随剪切气蚀的再循环是环形射流泵(AJP)的关键流量特性。在这项研究中,使用高速相机捕获了回流区域和各种类型的腔云。通过监视小气泡的轨迹,获得各流量比下的主要再循环区域。随着流量比的降低,再循环区域继续随着分离点向上游移动而扩展,而无论流量比如何降低,重新连接点几乎保持静止。采用希尔氏球形涡理论来评估回流区域的变化。而且,在再循环区域中的最小局部静态壁压力也减小,这可以促进剪切空化的发生和发展。剪切层中的大速度梯度会同时引发许多涡流,其核心成为潜在的空化点。因此,随着再循环区域的增长,依次出现了三种类型的空腔云,即带状,环形和合并的空腔云。基于高速成像结果,说明了这些空腔云的运动特征,包括其开始,变形和塌陷。带状和环形空腔云都是由剪切层中的小涡流引起的,因为涡流芯中的局部压力较低。但是,合并的空腔云是由几种带状和环形空腔云的组合引起的,这提供了更大的规模和更长的使用寿命。因此,合并的空腔云的坍塌会在再循环区域的重新连接点附近引起较大的压力脉动。还基于快速傅里叶变换(FFT)方法演示了相应的频谱。

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