Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity

Twin-web turbine discs have been the subject of recent research in an effort to lighten the weight of and boost the efficiency of aero engines. This has motivated researchers to investigate other configurations for an expanded blade air supply and twin-web turbine discs. However, the new configurati...

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Main Authors: Y. T. Guo, S. F. Wang, W. J. Shen
Format: Article
Language:English
Published: Isfahan University of Technology 2025-02-01
Series:Journal of Applied Fluid Mechanics
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Online Access:https://www.jafmonline.net/article_2607_ff7b3f19a4e89c5416220ab88a05d0ad.pdf
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author Y. T. Guo
S. F. Wang
W. J. Shen
author_facet Y. T. Guo
S. F. Wang
W. J. Shen
author_sort Y. T. Guo
collection DOAJ
description Twin-web turbine discs have been the subject of recent research in an effort to lighten the weight of and boost the efficiency of aero engines. This has motivated researchers to investigate other configurations for an expanded blade air supply and twin-web turbine discs. However, the new configuration's cooling mechanism is unclear. In this paper, the flow and heat transfer characteristics of two twin-web turbine disc systems, featuring distinct coolant inlet modes, are investigated through theoretical analysis and numerical simulation. The research results show that the central inlet mode leads to an uneven coolant distribution, a high convective heat transfer coefficient, and a high Nusselt number in the rotor–stator cavity. Meanwhile, the pre-swirl inlet mode improves cooling in the high-temperature region by disturbing the vorticity. Augmenting the dimensionless mass flow rate enhances the cooling efficiency via the notable jet effect, but it also escalates energy loss. As the rotational Reynolds number rises, the entrainment effect of the rotor assumes a dominant role, thereby reducing the swirl ratio. The increased turbulence parameter shifts the primary heat transfer driver from the rotor register to the jet effect, resulting in more uniform temperature changes and a reduced radial inhomogeneity. The pre-swirl inlet mode demonstrates an outstanding cooling performance overall.
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publisher Isfahan University of Technology
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series Journal of Applied Fluid Mechanics
spelling doaj-art-79601c6225f040ddbd0b8ed7801b58e12025-02-09T07:16:03ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452025-02-0118493394610.47176/jafm.18.4.29552607Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc CavityY. T. Guo0S. F. Wang1W. J. Shen2College of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, ChinaCollege of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, ChinaCollege of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, ChinaTwin-web turbine discs have been the subject of recent research in an effort to lighten the weight of and boost the efficiency of aero engines. This has motivated researchers to investigate other configurations for an expanded blade air supply and twin-web turbine discs. However, the new configuration's cooling mechanism is unclear. In this paper, the flow and heat transfer characteristics of two twin-web turbine disc systems, featuring distinct coolant inlet modes, are investigated through theoretical analysis and numerical simulation. The research results show that the central inlet mode leads to an uneven coolant distribution, a high convective heat transfer coefficient, and a high Nusselt number in the rotor–stator cavity. Meanwhile, the pre-swirl inlet mode improves cooling in the high-temperature region by disturbing the vorticity. Augmenting the dimensionless mass flow rate enhances the cooling efficiency via the notable jet effect, but it also escalates energy loss. As the rotational Reynolds number rises, the entrainment effect of the rotor assumes a dominant role, thereby reducing the swirl ratio. The increased turbulence parameter shifts the primary heat transfer driver from the rotor register to the jet effect, resulting in more uniform temperature changes and a reduced radial inhomogeneity. The pre-swirl inlet mode demonstrates an outstanding cooling performance overall.https://www.jafmonline.net/article_2607_ff7b3f19a4e89c5416220ab88a05d0ad.pdfflow characteristicpre-swirl systemturbulence parametertwin-web turbine disc cavitytemperature uniformity
spellingShingle Y. T. Guo
S. F. Wang
W. J. Shen
Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
Journal of Applied Fluid Mechanics
flow characteristic
pre-swirl system
turbulence parameter
twin-web turbine disc cavity
temperature uniformity
title Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
title_full Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
title_fullStr Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
title_full_unstemmed Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
title_short Effect of Coolant Inlet Mode on Heat Transfer Characteristics of a Twin-web Turbine Disc Cavity
title_sort effect of coolant inlet mode on heat transfer characteristics of a twin web turbine disc cavity
topic flow characteristic
pre-swirl system
turbulence parameter
twin-web turbine disc cavity
temperature uniformity
url https://www.jafmonline.net/article_2607_ff7b3f19a4e89c5416220ab88a05d0ad.pdf
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AT sfwang effectofcoolantinletmodeonheattransfercharacteristicsofatwinwebturbinedisccavity
AT wjshen effectofcoolantinletmodeonheattransfercharacteristicsofatwinwebturbinedisccavity