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Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex

The interaction between the film-cooling jet and vortex structures in the turbine passage plays an important role in the endwall cooling design. In this study, a simplified topology of a blunt body with a half-cylinder is introduced to simulate the formation of the leading-edge horseshoe vortex, whe...

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Autores principales: Chen, Ziyu, Hu, Kexin, Mao, Yinbo, Su, Xinrong, Yuan, Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774578/
https://www.ncbi.nlm.nih.gov/pubmed/35052041
http://dx.doi.org/10.3390/e24010015
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author Chen, Ziyu
Hu, Kexin
Mao, Yinbo
Su, Xinrong
Yuan, Xin
author_facet Chen, Ziyu
Hu, Kexin
Mao, Yinbo
Su, Xinrong
Yuan, Xin
author_sort Chen, Ziyu
collection PubMed
description The interaction between the film-cooling jet and vortex structures in the turbine passage plays an important role in the endwall cooling design. In this study, a simplified topology of a blunt body with a half-cylinder is introduced to simulate the formation of the leading-edge horseshoe vortex, where similarity compared with that in the turbine cascade is satisfied. The shaped cooling hole is located in the passage. With this specially designed model, the interaction mechanism between the cooling jet and the passage vortex can therefore be separated from the crossflow and the pressure gradient, which also affect the cooling jet. The loss-analysis method based on the entropy generation rate is introduced, which locates where losses of the cooling capacity occur and reveals the underlying mechanism during the mixing process. Results show that the cooling performance is sensitive to the hole location. The injection/passage vortex interaction can help enhance the coolant lateral coverage, thus improving the cooling performance when the hole is located at the downwash region. The coolant is able to conserve its structure in that, during the interaction process, the kidney vortex with the positive rotating direction can survive with the negative-rotating passage vortex, and the mixture is suppressed. However, the larger-scale passage vortex eats the negative leg of the kidney vortices when the cooling hole is at the upwash region. As a result, the coolant is fully entrained into the main flow. Changes in the blowing ratio alter the overall cooling effectiveness but have a negligible effect on the interaction mechanism. The optimum blowing ratio increases when the hole is located at the downwash region.
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spelling pubmed-87745782022-01-21 Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex Chen, Ziyu Hu, Kexin Mao, Yinbo Su, Xinrong Yuan, Xin Entropy (Basel) Article The interaction between the film-cooling jet and vortex structures in the turbine passage plays an important role in the endwall cooling design. In this study, a simplified topology of a blunt body with a half-cylinder is introduced to simulate the formation of the leading-edge horseshoe vortex, where similarity compared with that in the turbine cascade is satisfied. The shaped cooling hole is located in the passage. With this specially designed model, the interaction mechanism between the cooling jet and the passage vortex can therefore be separated from the crossflow and the pressure gradient, which also affect the cooling jet. The loss-analysis method based on the entropy generation rate is introduced, which locates where losses of the cooling capacity occur and reveals the underlying mechanism during the mixing process. Results show that the cooling performance is sensitive to the hole location. The injection/passage vortex interaction can help enhance the coolant lateral coverage, thus improving the cooling performance when the hole is located at the downwash region. The coolant is able to conserve its structure in that, during the interaction process, the kidney vortex with the positive rotating direction can survive with the negative-rotating passage vortex, and the mixture is suppressed. However, the larger-scale passage vortex eats the negative leg of the kidney vortices when the cooling hole is at the upwash region. As a result, the coolant is fully entrained into the main flow. Changes in the blowing ratio alter the overall cooling effectiveness but have a negligible effect on the interaction mechanism. The optimum blowing ratio increases when the hole is located at the downwash region. MDPI 2021-12-22 /pmc/articles/PMC8774578/ /pubmed/35052041 http://dx.doi.org/10.3390/e24010015 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Ziyu
Hu, Kexin
Mao, Yinbo
Su, Xinrong
Yuan, Xin
Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title_full Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title_fullStr Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title_full_unstemmed Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title_short Interaction Mechanism and Loss Analysis of Mixing between Film Cooling Jet and Passage Vortex
title_sort interaction mechanism and loss analysis of mixing between film cooling jet and passage vortex
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774578/
https://www.ncbi.nlm.nih.gov/pubmed/35052041
http://dx.doi.org/10.3390/e24010015
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