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首页> 外文期刊>Journal of Mechanical Science and Technology >Influence of nozzle exit tip thickness on the performance and flow field of jet pump
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Influence of nozzle exit tip thickness on the performance and flow field of jet pump

机译:喷嘴出口尖端厚度对喷射泵性能和流场的影响

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摘要

The influence of exit tip thickness of nozzle δ{sub}e on the flow field and performance of a jet pump was studied numerically in this paper. It is found that δ{sub}e has influence on the distribution of turbulence kinetic energy k. If δ{sub}e is ignored, k takes the highest value but dissipates rapidly than that of nozzle with a certain tip thickness. δ{sub}e also affect apparently the development of tip vortex, which will occur near the exit tip of nozzle. The bigger the δ{sub}e is, the larger the vortex is. The tip vortex develops with the increase of flow rate ratio q. When q=1 and δ{sub}e = 0.6~0.8mm, a small vortex will be found downstream the tip vortex. And a concomitant vortex happens down the tip vortex in the case of q=1 and δ{sub}e=0.8mm. As q increases to 2, the downstream small vortex disappears and the concomitant vortex becomes bigger. It is also found that the tip vortex might interact with the possible backflow that formed in the throat tube and parts of suction chamber. The center of backflow was affect evidently by δ{sub}e. With the increase of δ{sub}e, the center of backflow under the same q will go downstream. When δ{sub}e=0.4mm, the center of backflow goes farthest. Then, as the further increase of δ{sub}e, the center of backflow will go back some distance. Although, δ{sub}e has relatively great influence on the flow field within the jet pump, it exerts only a little impact on the performance of jet pump. When δ{sub}e=0.2~0.6mm, the jet pump possess better performance. In most case, it is reasonable to ignore the nozzle exit tip thickness in performance prediction for the purpose of simplicity.
机译:数值研究了喷嘴δ{e} e的出口尖端厚度对射流场和射流泵性能的影响。发现δ{sub} e对湍动能k的分布有影响。如果忽略δ{e} e,则k取最大值,但耗散速度比具有一定尖端厚度的喷嘴的耗散快。 δ{e} e显然还影响尖端涡旋的发展,尖端涡旋将在喷嘴出口尖端附近发生。 δ{sub} e越大,涡旋越大。尖端涡随着流量比q的增加而发展。当q = 1且δ{sub} e = 0.6〜0.8mm时,在尖端涡流的下游会发现一个小的涡流。在q = 1和δ{sub} e = 0.8mm的情况下,伴随着涡旋的发生沿着尖端涡旋。当q增加到2时,下游的小涡旋消失,伴随的涡旋变大。还发现,尖端涡旋可能与在喉管和吸入腔的一部分中形成的可能的回流相互作用。 δ{sub} e明显影响了回流中心。随着δ{sub} e的增加,相同q下的回流中心将向下游移动。当δ{e} e = 0.4mm时,回流中心最远。然后,随着δ{sub} e的进一步增加,回流中心将回退一段距离。尽管δ{e} e对喷射泵内的流场影响较大,但对喷射泵的性能影响很小。当δ{sub} e = 0.2〜0.6mm时,喷射泵具有更好的性能。在大多数情况下,出于简化目的,在性能预测中忽略喷嘴出口尖端的厚度是合理的。

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