Heat Transfer and Flow Characteristics of Channel Impingement Cooling Structure at Leading Edge Inside Turbine Blades Using Large Eddy Simulation

被引:0
作者
Wang, Huihui [1 ]
Deng, Qinghua [1 ]
Feng, Zhenping [1 ]
机构
[1] Xi An Jiao Tong Univ, Inst Turbomachinery, Shaanxi Engn Lab Turbomachinery & Power Equipment, Xian 710049, Peoples R China
来源
ASME JOURNAL OF HEAT AND MASS TRANSFER | 2024年 / 146卷 / 05期
关键词
gas turbine blades; wall jet cooling; flow and heat transfer; large eddy simulation; MULTIPLE-JET IMPINGEMENT; CURVED CHANNEL; STRONG CURVATURE; REYNOLDS-NUMBER; CROSS-FLOWS; ARRAY; FLAT; PERFORMANCE; SQUARE; PLATE;
D O I
10.1115/1.4064706
中图分类号
O414.1 [热力学];
学科分类号
摘要
As a main part of multichannel wall jet cooling structure, channel impingement cooling is a cooling strategy of great concern at the leading edge inside of the turbine blade. In this paper, heat transfer and flow behavior in the channel impingement cooling structure are investigated by large eddy simulation (LES). The results imply that impingement created by curvature-induced centrifugal instabilities in the turning region of the cooling channel is dominated by a streamwise vortex system containing a counter-rotating Dean vortex, which presents high heat transfer streaks along the streamwise direction on the target wall. The intensely unsteady nature of the cooling jet induced by a lack of equilibrium between the pressure gradient and the centrifugal force is precisely captured herein by LES. An attaching-wall jet formed on the outer wall downstream of the cooling channel has highly three-dimensional characteristics not observed by Reynolds-averaged Navier-Stokes equations (RANS). Heat transfer augmentation on the target wall of the cooling channel is mainly due to the intensifying streamwise vortex system developing in the turning region as driven by the centrifugal force. This research work will provide a reference for the optimization and application of multichannel wall jet cooling for gas turbine blades.
引用
收藏
页数:15
相关论文
共 53 条
[1]  
Amano R. S., 2019, AIAA Paper No. 2019-4240, DOI [10.2514/6.2019-4240, DOI 10.2514/6.2019-4240]
[2]   LDA investigation of the flow development through rotating U-ducts [J].
Cheah, SC ;
Iacovides, H ;
Jackson, DC ;
Ji, H ;
Launder, BE .
JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 1996, 118 (03) :590-596
[3]   Experimental and numerical study of the anti-crossflows impingement cooling structure [J].
Chi, Zhongran ;
Kan, Rui ;
Ren, Jing ;
Jiang, Hongde .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 64 :567-580
[4]   Cooling Characteristic of a Wall Jet for Suppressing Crossflow Effect under Conjugate Heat Transfer Condition [J].
Deng, Qinghua ;
Wang, Huihui ;
He, Wei ;
Feng, Zhenping .
AEROSPACE, 2022, 9 (01)
[5]   Experimental study of swirling flow characteristics in a semi cylinder vortex cooling configuration [J].
Fan, Xiaojun ;
He, Chuangxin ;
Gan, Lian ;
Li, Liang ;
Du, Changhe .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2020, 113
[6]   Cooling methods for gas turbine blade leading edge: Comparative study on impingement cooling, vortex cooling and double vortex cooling [J].
Fan, Xiaojun ;
Li, Liang ;
Zou, Jiasheng ;
Zhou, Yuanyuan .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2019, 100 :133-145
[7]   Local heat transfer of vortex cooling with multiple tangential nozzles in a gas turbine blade leading edge cooling passage [J].
Fan, Xiaojun ;
Li, Liang ;
Zou, Jiasheng ;
Wang, Jiefeng ;
Wu, Fan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 126 :377-389
[8]  
Felten F. N., 2007, ASME Paper No. GT2007-27423, DOI [10.1115/GT2007-27423, DOI 10.1115/GT2007-27423]
[9]   Effects of Mach number and Reynolds number on jet array impingement heat transfer [J].
Goodro, Matt ;
Park, Jongmyung ;
Ligrani, Phil ;
Fox, Mike ;
Moon, Hee-Koo .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2007, 50 (1-2) :367-380
[10]  
Han J.-C., 2006, GAS TURBINE HDB, P321