LAPSE:2023.5097
Published Article

LAPSE:2023.5097
A Numerical Study on Axial Pump Performance for Large Cavitation Tunnel Operation
February 23, 2023
Abstract
In this paper, a numerical investigation was carried out on the performances of a designed axial flow pump for a large cavitation tunnel. From this, the flow characteristics, force, and torque performance of the axial flow pump were investigated, and the rotating speeds of the impeller satisfying the test section speed performances required in the large cavitation tunnel were estimated. The axial flow pump was modeled such that the impeller, stator, and nacelle were located in a cylindrical tunnel. The calculations were carried out for incompressible steady-state turbulent flow considering the impeller rotating. The performance of the pump was confirmed, finding that the head gain was caused by the pressure jump downstream of the pump. The performance of the stator was confirmed to be good enough to refine the tangential flow due to the impeller rotating. To investigate the operating performance of the large cavitation tunnel, the head loss of the entire tunnel without the pump was obtained from a numerical analysis. The operating points were estimated from the specific speed−head coefficient curves, and it was found that the present numerical results were in good agreement with the experiments.
In this paper, a numerical investigation was carried out on the performances of a designed axial flow pump for a large cavitation tunnel. From this, the flow characteristics, force, and torque performance of the axial flow pump were investigated, and the rotating speeds of the impeller satisfying the test section speed performances required in the large cavitation tunnel were estimated. The axial flow pump was modeled such that the impeller, stator, and nacelle were located in a cylindrical tunnel. The calculations were carried out for incompressible steady-state turbulent flow considering the impeller rotating. The performance of the pump was confirmed, finding that the head gain was caused by the pressure jump downstream of the pump. The performance of the stator was confirmed to be good enough to refine the tangential flow due to the impeller rotating. To investigate the operating performance of the large cavitation tunnel, the head loss of the entire tunnel without the pump was obtained from a numerical analysis. The operating points were estimated from the specific speed−head coefficient curves, and it was found that the present numerical results were in good agreement with the experiments.
Record ID
Keywords
axial pump, Computational Fluid Dynamics, impeller, large cavitation tunnel, stator
Subject
Suggested Citation
Choi JK, Kim HT, Lee CS, Lee SJ. A Numerical Study on Axial Pump Performance for Large Cavitation Tunnel Operation. (2023). LAPSE:2023.5097
Author Affiliations
Choi JK: Department of Naval Architecture & Ocean Engineering, Mokpo National University, Jeollanamdo 58554, Korea [ORCID]
Kim HT: Department of Naval Architecture & Ocean Engineering, Chungnam National University, Deajeon 34134, Korea
Lee CS: Department of Naval Architecture & Ocean Engineering, Chungnam National University, Deajeon 34134, Korea
Lee SJ: Daewoo Shipbuilding & Marine Engineering Co., Ltd., Siheung 15011, Korea
Kim HT: Department of Naval Architecture & Ocean Engineering, Chungnam National University, Deajeon 34134, Korea
Lee CS: Department of Naval Architecture & Ocean Engineering, Chungnam National University, Deajeon 34134, Korea
Lee SJ: Daewoo Shipbuilding & Marine Engineering Co., Ltd., Siheung 15011, Korea
Journal Name
Processes
Volume
9
Issue
9
First Page
1523
Year
2021
Publication Date
2021-08-27
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr9091523, Publication Type: Journal Article
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LAPSE:2023.5097
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https://doi.org/10.3390/pr9091523
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Feb 23, 2023
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