Thermal-Fluid-Solid Coupling-Parametrical Numerical Analysis of Hot Turbine Nozzle Guide Vane

被引:4
|
作者
Froissart, Marcin [1 ]
Ochrymiuk, Tomasz [1 ]
机构
[1] Polish Acad Sci, Inst Fluid Flow Machinery, 14 Fiszera St, PL-80231 Gdansk, Poland
关键词
heat transfer coefficient; gas turbine blade; thermal-fluid-solid coupling; turbulent Prandtl number; temperature distribution; turbine vane cooling; HEAT-TRANSFER ENHANCEMENT; OPTIMIZATION; TEMPERATURE; PREDICTION; CHANNELS; FIELD; FLOW;
D O I
10.3390/ma14237313
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The cooling technology of hot turbine components has been a subject of continuous improvement for decades. In high-pressure turbine blades, the regions most affected by the excessive corrosion are the leading and trailing edges. In addition, high Kt regions at the hot gas path are exposed to cracking due to the low and high cycle fatigue failure modes. Especially in the case of a nozzle guide vane, the ability to predict thermally driven loads is crucial to assess its life and robustness. The difficulties in measuring thermal properties in hot conditions considerably limit the number of experimental results available in the literature. One of the most popular test cases is a NASA C3X vane, but coolant temperature is not explicitly revealed in the test report. As a result of that, numerous scientific works validated against that vane are potentially inconsistent. To address that ambiguity, the presented work was performed on a fully structural and a very fine mesh assuming room inlet temperature on every cooling channel. Special attention was paid to the options of the k-omega SST (shear-stress transport) viscosity model, such as Viscous heating (VH), Curvature correction (CC), Production Kato-Launder (KT), and Production limiter (PL). The strongest impact was from the Viscous heating, as it increases local vane temperature by as much as 40 deg. The significance of turbulent Prandtl number impact was also investigated. The default option used in the commercial CFD code is set to 0.85. Presented study modifies that value using equations proposed by Wassel/Catton and Kays/Crawford. Additionally, the comparison between four, two, and one-equation viscosity models was performed.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Dynamic simulation of nozzle structure based on thermal-fluid-solid coupling analysis
    Yuan Jia-hui
    Wang Ke
    Gu Xiu-cong
    13TH ASIA CONFERENCE ON MECHANICAL AND AEROSPACE ENGINEERING, ACMAE 2022, 2023, 2472
  • [3] Prediction of thermal fatigue life of a turbine nozzle guide vane
    Zheng, Xin-qian
    Du, Tao
    Zhang, Yang-jun
    JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2011, 12 (03): : 214 - 222
  • [4] Prediction of thermal fatigue life of a turbine nozzle guide vane
    Xin-qian Zheng
    Tao Du
    Yang-jun Zhang
    Journal of Zhejiang University-SCIENCE A, 2011, 12 : 214 - 222
  • [5] Thermal-Fluid-Solid Coupling Analysis on the Temperature and Thermal Stress Field of a Nickel-Base Superalloy Turbine Blade
    Cai, Liuxi
    He, Yao
    Wang, Shunsen
    Li, Yun
    Li, Fang
    MATERIALS, 2021, 14 (12)
  • [6] Thermal-Fluid-Solid Coupling Analysis on the Effect of Cooling Gas Temperature on the Fatigue Life of Turbine Blades with TBCs
    Chen, Yingtao
    Zhang, Ziliang
    Ai, Yanting
    Guan, Peng
    Yao, Yudong
    Liu, Hongwei
    COATINGS, 2023, 13 (10)
  • [7] Three-dimensional coupled aerodynamic and thermal analysis of a turbine nozzle guide vane
    Bohn, D
    Schoenenborn, H
    HEAT TRANSFER SCIENCE AND TECHNOLOGY 1996, 1996, : 565 - 570
  • [8] Numerical investigation of the split sliding guide vane for a variable nozzle turbine
    Yang, Dengfeng
    Yang, Ce
    Hu, Leon
    Yi, J. James
    Curtis, Eric
    Wooldridge, Margaret S.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2019, 233 (08) : 2074 - 2084
  • [9] Thermal-Fluid-Solid coupling mechanism of a novel friction reduction cooling structure for gas turbine
    Shi, Dongbo
    Huang, Chengming
    Xu, Tao
    Jing, Qi
    Zhang, Di
    Xie, Yonghui
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2023, 213
  • [10] Thermal-fluid-solid Coupling Numerical Simulation In ultra-supercritical steam trap
    Li, Shuxun
    Ding, Qiangwei
    Hu, Jianhua
    MECHANICAL ENGINEERING, MATERIALS SCIENCE AND CIVIL ENGINEERING II, 2014, 470 : 255 - 258