Vortex dynamics characteristics in the tip region based on Wray–Agarwal model

Author:

Li WeiORCID,Pu WeiORCID,Ji LeileiORCID,Liu MingjiangORCID,Yang QiaoyueORCID,He XinruiORCID,Agarwal Ramesh1ORCID

Affiliation:

1. Department of Mechanical Engineering and Materials Science, Washington University in St. Louis 4 , St. Louis, Missouri 63130, USA

Abstract

In order to solve the blockage effect and energy dissipation phenomenon caused by cavitation in the low-pressure vortex core region, this paper analyzes the spatial evolution of vorticity intensity and turbulent kinetic energy intensity under different cavitation conditions based on the Wray–Agarwal (WA) model. First, the tip leakage flow characteristics are studied, the evolution of vorticity and vorticity intensity is analyzed, then the distribution of turbulent kinetic energy distribution in the blade tip region is studied, and finally, the vorticity transport characteristics of the tip region are analyzed. It is found that the tip leakage rate is less affected by the vortex cavitation of the tip leakage, and there is a strong interaction between the leakage flow at the tip leading edge and the trailing edge, and the separation vortices and low-speed regions formed in the end-wall region cause blockage of the flow passage. Low pressure causes cavitation to cover most regions of the suction surface, inhibiting the formation and development of the tip leakage vortices. The distribution range of high turbulent kinetic energy region is almost the same as that of high-vorticity region, and there is a positive correlation between the two intensities. Severe cavitation causes the high turbulent kinetic energy region at the outlet of the flow passage to develop in the radial and axial directions of the impeller, which increases the turbulent dissipation and energy loss. The change of vorticity transport intensity caused by cavitation is mainly reflected in the expansion contraction term, and the Coriolis force term plays a dominant role in the vorticity transport process. This paper provides a reference for further improving the performance of mixed-flow pumps.

Funder

Key International Cooperative research of National Science Foundation of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

the Sixth "333 High Level Talent Person Cultivating Project" of Jiangsu Province

Founded projects of "Blue Project" in Jiangsu Colleges and Universities

"Belt and Road" Innovation Cooperation Project of Jiangsu Province

Jiangsu Provincial Agricultural Science and Technology Independent Innovation Fund

Open Research Subject of Key Laboratory of Fluid and Power Machinery, Ministry of Education

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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