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辐射对涡轮叶片综合冷却效率模化影响及修正

王海潮 贾钰帅 方弘毅 张翠珍 李雨萌 刘松 刘存良

王海潮, 贾钰帅, 方弘毅, 等. 辐射对涡轮叶片综合冷却效率模化影响及修正[J]. 航空动力学报, 2026, 41(7):20250211 doi: 10.13224/j.cnki.jasp.20250211
引用本文: 王海潮, 贾钰帅, 方弘毅, 等. 辐射对涡轮叶片综合冷却效率模化影响及修正[J]. 航空动力学报, 2026, 41(7):20250211 doi: 10.13224/j.cnki.jasp.20250211
Wang Haichao, Jia Yushuai, Fang Hongyi, et al. Effect of radiation on the comprehensive cooling efficiency modalization of turbine vane and its correction[J]. Journal of Aerospace Power, 2026, 41(7):20250211 doi: 10.13224/j.cnki.jasp.20250211
Citation: Wang Haichao, Jia Yushuai, Fang Hongyi, et al. Effect of radiation on the comprehensive cooling efficiency modalization of turbine vane and its correction[J]. Journal of Aerospace Power, 2026, 41(7):20250211 doi: 10.13224/j.cnki.jasp.20250211

辐射对涡轮叶片综合冷却效率模化影响及修正

doi: 10.13224/j.cnki.jasp.20250211
基金项目: 先进航空动力创新工作站项目(HKCX2024-01-012); 中国航发四川燃气涡轮研究院稳定支持项目(WDZC)
详细信息
    作者简介:

    王海潮(1988-),男,副教授,博士,主要从事涡轮热端部件冷却设计以及冷却效率测量评估。E-mail:wanghc@nwpu.edu.cn

    通讯作者:

    刘存良(1983-),男,教授、博士生导师,博士,研究方向为涡轮叶片气膜冷却结构设计与流动换热特性研究。E-mail:liucunliang@nwpu.edu.cn

  • 中图分类号: V231.1

Effect of radiation on the comprehensive cooling efficiency modalization of turbine vane and its correction

  • 摘要:

    为精确评估高温高压下涡轮叶片综合冷却效率,采用数值仿真方法研究热辐射对低工况实验结果外推精度的影响。结果显示,不计热辐射时,由低工况模化得到的高工况叶片平均综合冷却效率与真实值偏差为3.14%;计入辐射效应后,该偏差增至6.48%,表明辐射是导致模化失准的主要因素。针对该问题,选取主流雷诺数比、温度比和压力比作为关键无量纲参数,构建幂函数形式的修正模型,并通过多工况仿真数据的非线性回归确定了关联式具体形式。验证表明:应用该修正关联式后,高低工况间的最大冷却效率偏差被控制在1.21%以内,显著提升了模化预测的准确性。

     

  • 图 1  叶片结构示意图

    Figure 1.  Vane structure

    图 2  叶片内部冷却结构

    Figure 2.  Vane internal structure

    图 3  计算模型示意图

    Figure 3.  Schematic diagram of the computational model

    图 4  计算域网格示意图

    Figure 4.  Schematic diagram of the computational mesh

    图 5  网格无关性验证

    Figure 5.  Mesh-independent verification

    图 6  计算模型准确性验证

    Figure 6.  Validation of computational model accuracy

    图 7  涡轮导叶不同温度下中截面马赫数云图对比(Reg=1.17×106

    Figure 7.  Comparison of mid-section Mach number clouds at different temperatures for turbine guide vanes (Reg=1.17×106

    图 8  涡轮导叶高低工况毕渥数云图对比(Reg=1.17×106

    Figure 8.  Comparison of high and low operating conditions of turbine guide vane Biot number clouds (Reg=1.17×106

    图 9  不同工况下叶片表面综合冷却效率展向平均

    Figure 9.  Spanwise-averaged surface comprehensive cooling efficiency under different operating conditions

    图 10  不同工况下叶片表面平均综合冷却效率值

    Figure 10.  Averaged comprehensive cooling efficiency of vane surface under different operating conditions

    图 11  不同工况下叶片表面平均温度

    Figure 11.  Averaged temperature of vane surface under different operating conditions

    图 12  高低工况综合冷却效率比值图

    Figure 12.  Comprehensive cooling efficiency ratio diagram under high and low operating conditions

    图 13  拟合点与基准工况绝对误差图

    Figure 13.  Absolute error of the fitted point from the reference condition

    表  1  边界条件

    Table  1.   Boundary condition

    边界条件 数值
    实际发动机工况 实验室匹配工况
    Reg /106 1.17 1.17
    Tin/K 2 012 500,800,1100
    14001700
    主次流压比 2 2
    主次流温比 2 2
    尺寸比 1 1
    入口黑体辐射
    温度/K
    2 012 500,800,1100
    14001700
    下载: 导出CSV

    表  2  叶片模化修正工况表

    Table  2.   Modalized correction worksheet

    工况 Tin/K pg/kPa Reg/105
    主流雷诺数一致 1700 2100 11.7
    1400 1690
    1100 1290
    800 900
    500 516
    主流燃气压力一致 1700 2526 14.0
    1400 17.5
    1100 23.0
    800 33.3
    500 58.5
    主流燃气温度一致 2 012 2100 9.73
    1690 7.80
    1290 5.95
    900 4.00
    516 2.31
    下载: 导出CSV

    表  3  各参数比对叶片综合冷却效率比的影响

    Table  3.   Influence of parameters on the comprehensive cooling efficiency of vanes

    恒定条件变量综合冷却效率比偏差/%
    主流燃气压力比、雷诺数比不变主流燃气温度比变化10%7.73
    主流燃气雷诺数比、温度比不变主流燃气压力比变化10%6.94
    主流燃气压力比、温度比不变主流燃气雷诺数比变化10%6.10
    下载: 导出CSV
  • [1] 杨登文, 黄康, 李世峰, 等. 主流物性参数对燃气涡轮冷却叶片气热耦合性能评估影响[J]. 航空动力学报, 2026, 41(2): 20240198. Yang Dengwen, Huang Kang, Li Shifeng, et al. Effect of thermophysical property of the mainstream on the cooling performance evaluation of gas turbine vane[J]. Journal of Aerospace Power, 2026, 41(2): 20240198. (in Chinese

    Yang Dengwen, Huang Kang, Li Shifeng, et al. Effect of thermophysical property of the mainstream on the cooling performance evaluation of gas turbine vane[J]. Journal of Aerospace Power, 2026, 41(2): 20240198. (in Chinese)
    [2] 魏威, 张耘隆, 刘汉宇, 等. 基于离散坐标法的辐射模型研究[J]. 强度与环境, 2022, 49(5): 125-128. Wei Wei, Zhang Yunlong, Liu Hanyu, et al. The evaluation of WSGGM based on the discrete ordinates method[J]. Structure & Environment Engineering, 2022, 49(5): 125-128. (in Chinese doi: 10.19447/j.cnki.11-1773/v.2022.05.019

    Wei Wei, Zhang Yunlong, Liu Hanyu, et al. The evaluation of WSGGM based on the discrete ordinates method[J]. Structure & Environment Engineering, 2022, 49(5): 125-128. (in Chinese) doi: 10.19447/j.cnki.11-1773/v.2022.05.019
    [3] 成珂, 李新中, 束鹏程, 等. 蒙特卡洛法计算G型辐冷器抛物面屏耦合因子的研究[J]. 制冷学报, 2003, 24(1): 23-27. Cheng Ke, Li Xinzhong, Shu Pengcheng, et al. Research on calculating exchange factors of the parabolic reflector of the G-type radiant cooler by the Monte Carlo method[J]. Refrigeration Journal, 2003, 24(1): 23-27. (in Chinese doi: 10.3969/j.issn.0253-4339.2003.01.006

    Cheng Ke, Li Xinzhong, Shu Pengcheng, et al. Research on calculating exchange factors of the parabolic reflector of the G-type radiant cooler by the Monte Carlo method[J]. Refrigeration Journal, 2003, 24(1): 23-27. (in Chinese) doi: 10.3969/j.issn.0253-4339.2003.01.006
    [4] Colladay R S, Stepka F S. Similarity constraints in testing of cooled engine parts[R]. NASA-TN-D-7707, 1974.
    [5] Asok Kumar N, Kale S R. Numerical simulation of steady state heat transfer in a ceramic-coated gas turbine blade[J]. International Journal of Heat and Mass Transfer, 2002, 45(24): 4831-4845. doi: 10.1016/S0017-9310(02)00190-4
    [6] 张丽芬, 刘振侠, 廉筱纯. 气冷涡轮叶片三维换热问题计算[J]. 航空动力学报, 2007, 22(8): 1268-1272. Zhang Lifen, Liu Zhenxia, Lian Xiaochun. Numerical study of 3D heat transfer for turbine blade with air cooling[J]. Journal of Aerospace Power, 2007, 22(8): 1268-1272. (in Chinese doi: 10.3969/j.issn.1000-8055.2007.08.011

    Zhang Lifen, Liu Zhenxia, Lian Xiaochun. Numerical study of 3D heat transfer for turbine blade with air cooling[J]. Journal of Aerospace Power, 2007, 22(8): 1268-1272. (in Chinese) doi: 10.3969/j.issn.1000-8055.2007.08.011
    [7] Wang Tianyi, Xuan Yimin, Han Xingsi. Analysis of transient radiation-convection coupled effects on the HP turbine blade heat load with hot streak inlet[J]. Applied Thermal Engineering, 2018, 138: 705-721. doi: 10.1016/j.applthermaleng.2018.04.110
    [8] Sun P, Li X Y, Ren J, et al. Analysis of radiation-convection coupled effects on the turbine vane with different gas compositions[R]. ASME Paper GT2020-14376, 2020.
    [9] Cao Feifei, Meng Xianlong, Fang Hongyi, et al. Investigation of scaling criteria and matching method of overall cooling effectiveness with thermal radiation[J]. Applied Thermal Engineering, 2023, 233: 121063. doi: 10.1016/j.applthermaleng.2023.121063
    [10] Vasudev S. Effects of gas radiation in scaled cooling effectiveness tests of turbine vanes[R]. AIAA-2006-5272, 2006.
    [11] Yin H, Li M F, Chi Z R, et al. Effect of radiative heat transfer factor on the temperature distribution of a first stage vane[R]. ASME Paper GT2014-25711, 2014.
    [12] 王成军, 江平, 辛欣, 等. 进气温度对航空发动机燃烧室辐射换热的影响[J]. 航空发动机, 2013, 39(5): 31-33, 59. Wang Chengjun, Jiang Ping, Xin Xin, et al. Influence of inlet air temperature on radiation heat transfer for aeroengine combustor[J]. Aeroengine, 2013, 39(5): 31-33, 59. (in Chinese doi: 10.3969/j.issn.1672-3147.2013.05.007

    Wang Chengjun, Jiang Ping, Xin Xin, et al. Influence of inlet air temperature on radiation heat transfer for aeroengine combustor[J]. Aeroengine, 2013, 39(5): 31-33, 59. (in Chinese) doi: 10.3969/j.issn.1672-3147.2013.05.007
    [13] 刘友宏, 任浩亮. 辐射换热对平板气膜冷却性能影响[J]. 推进技术, 2017, 38(3): 588-596. Liu Youhong, Ren Haoliang. Effects of radiation heat transfer on film cooling performance of flat plate[J]. Journal of Propulsion Technology, 2017, 38(3): 588-596. (in Chinese doi: 10.13675/j.cnki.tjjs.2017.03.014

    Liu Youhong, Ren Haoliang. Effects of radiation heat transfer on film cooling performance of flat plate[J]. Journal of Propulsion Technology, 2017, 38(3): 588-596. (in Chinese) doi: 10.13675/j.cnki.tjjs.2017.03.014
    [14] 王睿, 刘存良, 李鹏刚, 等. 涡轮叶片前缘综合冷却效率匹配原则的验证研究[J]. 燃气涡轮试验与研究, 2025, 38(2): 110-118. Wang Rui, Liu Cunliang, Li Penggang, et al. Verification study on analogy principle of overall cooling effectiveness at turbine vane leading edge[J]. Gas Turbine Experiment and Research, 2025, 38(2): 110-118. (in Chinese doi: 10.3724/j.GTER.20250017

    Wang Rui, Liu Cunliang, Li Penggang, et al. Verification study on analogy principle of overall cooling effectiveness at turbine vane leading edge[J]. Gas Turbine Experiment and Research, 2025, 38(2): 110-118. (in Chinese) doi: 10.3724/j.GTER.20250017
    [15] 尹洪, 王文萍, 任静, 等. 燃烧室出口辐射对气膜冷却传热影响研究[J]. 工程热物理学报, 2012, 33(2): 214-217. Yin Hong, Wang Wenping, Ren Jing, et al. Research on the effect of combustor outlet radiation on the film cooling heat transfer[J]. Journal of Engineering Thermophysics, 2012, 33(2): 214-217. (in Chinese

    Yin Hong, Wang Wenping, Ren Jing, et al. Research on the effect of combustor outlet radiation on the film cooling heat transfer[J]. Journal of Engineering Thermophysics, 2012, 33(2): 214-217. (in Chinese)
    [16] Mazzotta D W, Chyu M K, Alvin M A. Airfoil heat transfer characteristics in syngas and hydrogen turbines[R]. ASME Paper GT2007-28296, 2009.
    [17] Mick Y, Wörz B, Findeisen E, et al. Study on relevant effects concerning heat transfer of a convection cooled gas turbine blade under realistic engine temperature conditions[R]. ASME Paper GT2013-94185, 2013.
    [18] 薛宪阔, 刘彦丰. O2/CO2燃烧产物辐射换热系数计算方法及影响因素分析[J]. 广东电力, 2008, 21(12): 32-34. Xue Xiankuo, Liu Yanfeng. Analysis of radiative heat transfer coefficient calculation and influencing factors of oxy-fuel combustion productions[J]. Guangdong Electric Power, 2008, 21(12): 32-34. (in Chinese doi: 10.3969/j.issn.1007-290X.2008.12.009

    Xue Xiankuo, Liu Yanfeng. Analysis of radiative heat transfer coefficient calculation and influencing factors of oxy-fuel combustion productions[J]. Guangdong Electric Power, 2008, 21(12): 32-34. (in Chinese) doi: 10.3969/j.issn.1007-290X.2008.12.009
    [19] Greiner N J, Marc D, Rutledge J L, et al. Effect of variable properties and radiation on convective heat transfer measurements at engine conditions[J]. ASME Journal of Heat and Mass Transfer, 2016, 138(11): 112002. doi: 10.1115/1.4033537
    [20] Wang Tianyi, Xuan Yimin, Han Xingsi. Analysis of transient radiation-convection coupled effects on the HP turbine blade heat load with hot streak inlet[J]. Appled Thermal Engineering, 2018, 138: 705-721.

    Wang Tianyi, Xuan Yimin, Han Xingsi. Analysis of transient radiation-convection coupled effects on the HP turbine blade heat load with hot streak inlet[J]. Appled Thermal Engineering, 2018, 138: 705-721.
    [21] Badinand T, Fransson T H. Influence of the reference state in the SLW model for flows with strong temperature and pressure gradients[R]. ASME Paper GT2002-30230, 2009.
    [22] 王天壹, 宣益民. 热辐射对气膜冷却叶片冷却性能影响[J]. 航空动力学报, 2018, 33(8): 1801-1810. Wang Tianyi, Xuan Yimin. Effect of thermal radiation on the heat transfer performance of a film cooling vane[J]. Journal of Aerospace Power, 2018, 33(8): 1801-1810. (in Chinese doi: 10.13224/j.cnki.jasp.2018.08.002

    Wang Tianyi, Xuan Yimin. Effect of thermal radiation on the heat transfer performance of a film cooling vane[J]. Journal of Aerospace Power, 2018, 33(8): 1801-1810. (in Chinese) doi: 10.13224/j.cnki.jasp.2018.08.002
    [23] 饶乐威, 王天壹, 连文磊. 热辐射对气膜冷却叶片表面热负荷的影响[J]. 航空发动机, 2023, 49(4): 38-47. Rao Lewei, Wang Tianyi, Lian Wenlei. Effect of thermal radiation on the thermal load of a film-cooled vane[J]. Aeroengine, 2023, 49(4): 38-47. (in Chinese doi: 10.13477/j.cnki.aeroengine.2023.04.006

    Rao Lewei, Wang Tianyi, Lian Wenlei. Effect of thermal radiation on the thermal load of a film-cooled vane[J]. Aeroengine, 2023, 49(4): 38-47. (in Chinese) doi: 10.13477/j.cnki.aeroengine.2023.04.006
    [24] Menter F R, Langtry R B, Likki S R, et al. A correlation-based transition model using local variables: Part Ⅰ model formulation[J]. Journal of Turbomachinery, 2006, 128(3): 413. doi: 10.1115/1.2184352
    [25] Langtry R B, Menter F R, Likki S R, et al. A correlation-based transition model using local variables: Part Ⅱ test cases and industrial applications[J]. Journal of Turbomachinery, 2006, 128(3): 423-434. doi: 10.1115/1.2184353
    [26] 陈立立, 郭正. 基于γ-Reθt转捩模型的低雷诺数翼型数值分析[J]. 航空学报, 2016, 37(4): 1114-1126. Chen Lili, Guo Zheng. Numerical analysis for low Reynolds number airfoil based on γ-Reθt transition model[J]. Acta Aeronautica et Astronautica Sinica, 2016, 37(4): 1114-1126. (in Chinese doi: 10.7527/S1000-6893.2015.0278

    Chen Lili, Guo Zheng. Numerical analysis for low Reynolds number airfoil based on γ-Reθt transition model[J]. Acta Aeronautica et Astronautica Sinica, 2016, 37(4): 1114-1126. (in Chinese) doi: 10.7527/S1000-6893.2015.0278
    [27] Raithby G D, Chui E H. A finite-volume method for predicting a radiant heat transfer in enclosures with participating media[J]. Journal of Heat Transfer, 1990, 112(2): 415-423. doi: 10.1115/1.2910394
    [28] Halila E E, Lenahan D T, Thomas T T. High pressure turbine test hardware detailed design report[R]. NASA CR-167355, 1982.
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  • 收稿日期:  2025-04-30
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