NACA 662-415 단면을 가지는 타원형 수중익의 날개 끝 보오텍스 및 캐비테이션 수치해석Numerical Analysis of Tip Vortex and Cavitation of Elliptic Hydrofoil with NACA 662-415 Cross Section
- Other Titles
- Numerical Analysis of Tip Vortex and Cavitation of Elliptic Hydrofoil with NACA 662-415 Cross Section
- Authors
- 박일룡; 김제인; 설한신; 김기섭; 안종우
- Issue Date
- 2018
- Publisher
- 한국해양공학회
- Keywords
- Elliptic hydrofoil 타원형 수중익; CFD 전산유체역학; Tip vortex cavitation 날개 끝 보오텍스 캐비테이션; Local flow analysis 국부유동해석; Turbulence model 난류모형
- Citation
- 한국해양공학회지, v.32, no.4, pp 244 - 252
- Pages
- 9
- Journal Title
- 한국해양공학회지
- Volume
- 32
- Number
- 4
- Start Page
- 244
- End Page
- 252
- URI
- https://www.kriso.re.kr/sciwatch/handle/2021.sw.kriso/504
- DOI
- 10.26748/KSOE.2018.6.32.4.244
- ISSN
- 1225-0767
2287-6715
- Abstract
- This paper provides quantification of the effects of the turbulence model and grid refinement on the analysis of tip vortex flows by using the RANS(Reynolds averaged Navier-Stokes) method. Numerical simulations of the tip vortex flows of the NACA 662-415 elliptic hydrofoil were conducted, and two turbulence models for RANS closure were tested, i.e., the Realizable k-ε model and the Reynolds stress transport model. Numerical results were compared with available experimental data, and it was shown that the data for the Reynolds stress transport model that were computed on the finest grid system had better agreement in reproducing the development and propagation of the tip vortex. The Realizable k-ε model overestimated the turbulence level in the vortex core and showed a diffusive behavior of the tip vortex. The tip vortex cavitation on the hydrofoil and its trajectory also showed good agreement between the current numerical results that were obtained using the Reynolds stress transport model and the results observed in the experiment.
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