WU Hang, YANG Xing, CAI Haiyang, et al. Conjugate Heat Transfer of Extended Jet Impingement and Fan-Shaped Film Hole Composite Structure Experimental and Computational Approaches[J]. 2024, 58(10): 156-167.
DOI:
WU Hang, YANG Xing, CAI Haiyang, et al. Conjugate Heat Transfer of Extended Jet Impingement and Fan-Shaped Film Hole Composite Structure Experimental and Computational Approaches[J]. 2024, 58(10): 156-167.DOI: 10.7652/xjtuxb202410014.
Conjugate Heat Transfer of Extended Jet Impingement and Fan-Shaped Film Hole Composite Structure Experimental and Computational Approaches
For the impingement-film composite cooling structure
the conjugate heat transfer and flow characteristics of five composite cooling systems
including traditional jet impingement
extended jet impingement
and small-distance jet impingement
in combination with cylindrical film holes and fan-shaped film holes
are compared by using experimental and computational approaches. Infrared thermography is used in experiments to obtain overall cooling effectiveness of the outer wall surface under three blowing ratios: 0.6
1.0 and 1.5. The computational approach is used to further reveal the flow and heat exchange characteristics of internal cooling details. Results show that the extended jet impingement hole structure can enhance the internal heat transfer coefficient without generating additional aerodynamic losses
which in turn improves overall cooling effectiveness by a small amount
ranging from 1.2% to 4.6%
but the improvement decreased with the increase of the coolant mass flow rate
that reducing the impingement distance can enhance the internal impingement heat transfer performance
which had no significant effect on overall cooling effectiveness and that the use of fan-shaped film holes can significantly improve the external film cooling performance
and the enhancement was greater than that through the internal optimization structure using extended jet holes. Compared with the traditional composite cooling structure of cylindrical film holes combined with impingement
the extended jet impingement scheme based on fan-shaped holes can improve the area-averaged overall cooling effectiveness by 7.6% to 8.5% and improve discharge coefficient by more than 30% under the same amount of coolant.
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references
PANDA R K, PRASAD B. Conjugate heat transfer from a flat plate with combined impingement and film cooling [C]//ASME Turbo Expo 2012: Turbine Technical Conference and Exposition. New York, USA: ASME, 2012: 347-356.
FEI Xinyang, WANG Xinjun, LU Haikong. Numerical simulation for flow and heat transfer characteristics of impingement/effusion cooling on a flat plane [J]. Journal of Xi'an Jiaotong University, 2017, 51(7): 57-61.
JUNG E Y, CHUNG H, CHOI S M, et al. Conjugate heat transfer on full-coverage film cooling with array jet impingements with various Biot numbers [J]. Experimental Thermal and Fluid Science, 2017, 83: 1-8.
TAN Xiaoming, ZHANG Jingzhou, XU Huasheng. Experimental investigation on impingement/effusion cooling with short normal injection holes [J]. International Communications in Heat and Mass Transfer, 2015, 69: 1-10.
XIE Gang, LIU Cunliang, YE Lin, et al. Effects of impingement gap and hole arrangement on overall cooling effectiveness for impingement/effusion cooling [J]. International Journal of Heat and Mass Transfer, 2020, 152: 119449.
CHO H H, RHEE D H, GOLDSTEIN R J. Effects of hole arrangements on local heat/mass transfer for impingement/effusion cooling with small hole spacing [J]. Journal of Turbomachinery, 2008, 130(4): 041003.
RAO Yu, LIU Yuyang, WAN Chaoyi. Multiple-jet impingement heat transfer in double-wall cooling structures with pin fins and effusion holes [J]. International Journal of Thermal Sciences, 2018, 133: 106-119.
LIU Zhao, JIA Zhe, ZHANG Zhixin, et al. A comparative study on conjugate heat transfer of impingement-film composite cooling and swirl-film composite cooling on leading edge of a turbine blade [J]. Journal of Xi'an Jiaotong University, 2021, 55(4): 116-125.
DENG Qinghua, WANG Huihui, HE Wei, et al. Mechanism of action between film suction and wall jet in leading edge of blades [J]. Journal of Xi'an Jiaotong University, 2022, 56(10): 160-169.
LIU Xuebin, ZHANG Chao, SONG Liming, et al. Influence of Biot number and geometric parameters on the overall cooling effectiveness of double wall structure with pins [J]. Applied Thermal Engineering, 2021, 198: 117439.
WEIGAND B, SPRING S. Multiple jet impingement: a review [J]. Heat Transfer Research, 2011, 42(2): 101-142.
LI Weihong, XU Minghe, REN Jing, et al. Experimental investigation of local and average heat transfer coefficients under an inline impinging jet array, including jets with low impingement distance and inclined angle [J]. Journal of Heat Transfer,2017, 139(1): 012201.
GAO Lujia, EKKAD S V, BUNKER R S. Impingement heat transfer part I: linearly stretched arrays of holes [J]. Journal of Thermophysics and Heat Transfer, 2005, 19(1): 57-65.
ESPOSITO E I, EKKAD S V, KIM Y, et al. Novel jet impingement cooling geometry for combustor liner backside cooling [J]. Journal of Thermal Science and Engineering Applications, 2009, 1(2): 021001.
KIM T, JUNG E Y, BANG M, et al. Heat transfer measurements for array jet impingement with castellated wall [J]. Journal of Turbomachinery,2022, 144(3): 031009.
LIU Kexin, ZHANG Qiang. A novel multi-stage impingement cooling scheme: part Ⅰ concept study [J]. Journal of Turbomachinery, 2020, 142(12): 121008.
TEPE A Ü, YETIŞKEN Y, UYSAL Ü, et al. Experimental and numerical investigation of jet impingement cooling using extended jet holes [J]. International Journal of Heat and Mass Transfer, 2020, 158: 119945.
WU Hang, YANG Xing, ZHAO Qiang, et al. Numerical study on flow and heat transfer characteristics of impingement cooling with extended jet holes [J]. Journal of Propulsion Technology, 2022, 43(10): 291-298.
YANG Xing, WU Hang, FENG Zhenping. Jet impingement heat transfer characteristics with variable extended jet holes under strong crossflow conditions [J]. Aerospace, 2022, 9(1): 44.
YANG Xing, WU Hang, FENG Zhenping. Experimental and numerical investigations of extended jet effects on multiple-jet impingement heat transfer characteristics [J]. Journal of Thermal Science and Engineering Applications, 2022, 14(10): 101015.
YANG Xing, WU Hang, HAO Zihan, et al. Assessment of a virtual boundary concept for efficient modeling of turbine film cooling [J/OL]. Numerical Heat Transfer: Part A Applications. [2023-06-23]. https://doi.org/10.1080/10407782.2023.2299286.
WU Hang, YANG Xing, WU Yongqiang, et al. Experimental decoupled-analysis of overall cooling effectiveness for a turbine endwall with internal and external cooling configurations [J]. Applied Thermal Engineering, 2023, 228: 120435.
ROACH P E. The generation of nearly isotropic turbulence by means of grids [J]. International Journal of Heat and Fluid Flow, 1987, 8(2): 82-92.
THOLE K, GRITSCH M, SCHULZ A, et al. Flowfield measurements for film-cooling holes with expanded exits [C]//ASME 1996 International Gas Turbine and Aeroengine Congress and Exhibition. New York, USA: ASME, 1996: V004T09A010.
MOFFAT R J. Describing the uncertainties in experimental results [J]. Experimental Thermal and Fluid Science, 1988, 1(1): 3-17.
SAUMWEBER C, SCHULZ A. Effect of geometry variations on the cooling performance of fan-shaped cooling holes [J]. Journal of Turbomachinery, 2012, 134(6): 061008.