留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

不同湍流度下吹风比对涡轮导向叶片吸力面气膜冷却的影响

贺宜红 刘存良 宋辉 朱惠人 周志翔

贺宜红, 刘存良, 宋辉, 朱惠人, 周志翔. 不同湍流度下吹风比对涡轮导向叶片吸力面气膜冷却的影响[J]. 航空动力学报, 2018, 33(3): 521-529. doi: 10.13224/j.cnki.jasp.2018.03.002
引用本文: 贺宜红, 刘存良, 宋辉, 朱惠人, 周志翔. 不同湍流度下吹风比对涡轮导向叶片吸力面气膜冷却的影响[J]. 航空动力学报, 2018, 33(3): 521-529. doi: 10.13224/j.cnki.jasp.2018.03.002
Effects of blowing ratio on turbine vane suction side film cooling under different turbulence intensity conditions[J]. Journal of Aerospace Power, 2018, 33(3): 521-529. doi: 10.13224/j.cnki.jasp.2018.03.002
Citation: Effects of blowing ratio on turbine vane suction side film cooling under different turbulence intensity conditions[J]. Journal of Aerospace Power, 2018, 33(3): 521-529. doi: 10.13224/j.cnki.jasp.2018.03.002

不同湍流度下吹风比对涡轮导向叶片吸力面气膜冷却的影响

doi: 10.13224/j.cnki.jasp.2018.03.002
基金项目: 国家自然科学基金(51306152); 航空科学基金(2014ZB53023)

Effects of blowing ratio on turbine vane suction side film cooling under different turbulence intensity conditions

  • 摘要: 采用基于窄带热色液晶测量的瞬态全表面传热测量技术,研究了不同主流湍流度下的吹风比对涡轮导向叶片气膜冷却的影响,获得了叶片吸力面侧圆柱形孔排气膜冷却效率和表面传热系数比的全表面分布数据。结果表明:由于气膜射流与主流掺混的相互作用会随着主流湍流度的变化而变化,因此在主流湍流度不同时,吹风比对气膜冷却效率和表面传热系数比的影响规律会有所不同;主流湍流度较小时,吹风比的增大会显著减弱气膜覆盖效果与气膜冷却效率,但是在大湍流度下,吹风比的影响较弱,尤其是在远下游区域;相同的主流湍流度条件下,吹风比的增大会使得表面传热系数提高,但是在大湍流度下,换热增强效果较弱;相同吹风比下,高湍流度下的表面传热系数比相对较小。

     

  • [1] BUNKER R S.Evolution of turbine cooling[R].ASME Paper GT2017-63205,2017.
    [2] BUNKER R S.Gas turbine film cooling:breaking the limits of diffusion shaped holes[J].Heat Transfer Research,2010,41(6):627-650.
    [3] ETHRIDGE M I,CUTBIRTH J M,BOGARD D G.Scaling of performance for varying density ratio coolants on an airfoil with strong curvature and pressure gradient effects[R].ASME Paper 2000-GT-0239,2000.
    [4] CUTBIRTH J M,BOGARD D G.Effects of coolant density ratio on film cooling performance on a vane[R].ASME Paper GT2003-38582,2003.
    [5] ALBERT J E,BOGARD D G.Experimental simulation of contaminant deposition on a film cooled turbine vane pressure side with a trench[R].ASME Paper GT2011-46709,2011.
    [6] ALBERT J E,BOGARD D G.Measurements of adiabatic film and overall cooling effectiveness on a turbine vane pressure side with a trench[J].Journal of Turbomachinery,2011,135(5):629-640.
    [7] GUO S M,LAI C C,JONES T V,et al.The application of thin-film technology to measure turbine-vane heat transfer and effectiveness in a film-cooled,engine-simulated environment[J].International Journal of Heat and Fluid Flow,1998,19(6):594-600.
    [8] KINELL M,UTRIAINEN E,HYLN J,et al.Fan shaped and cylindrical holes studied in vane film cooling test rig[R].ASME Paper GT2010-23308,2010.
    [9] WAYE S K,BOGARD D G.High-resolution film cooling effectiveness comparison of axial and compound angle holes on the suction side of a turbine vane[J].Journal of Turbomachinery,2007,129(2):202-211.
    [10] 李国庆,邓宏武,侠晖霞.复合角对涡轮叶片旋转气膜冷却效果的影响[J].航空动力学报,2010,25(2):308-313.LI Guoqing,DENG Hongwu,XIA Huixia.Numerical investigation on film cooling effectiveness of rotating blade with multihole[J].Journal of Aerospace Power,2010,25(2):308-313.(in Chinese)
    [11] COLBAN W,THOLE K A,HAENDLER M.Experimental and computational comparisons of fan-shaped film cooling on a turbine vane surface[J].Journal of Turbomachinery,2007,129(1):23-31.
    [12] ZHANG L,MOON H K.Turbine blade film cooling study:the effects of film hole location on the pressure side[R].ASME Paper GT2007-27546,2007.
    [13] 李广超,朱惠人,廖乃冰,等.气动参数对前缘气膜冷却效率影响的实验[J].航空动力学报,2008,23(2):215-220.LI Guangchao,ZHU Huiren,LIAO Naibing,et al.Influence of aerodynamic parameters on film cooling effectiveness on the vane leading edge[J].Journal of Aerospace Power,2008,23(2):215-220.(in Chinese)
    [14] 邓明春,朱惠人,王学文,等.密度比对涡轮叶片气膜孔流量系数的影响[J].航空动力学报,2006,21(5):795-799.DENG Mingchun,ZHU Huiren,WANG Xuewen,et al.Influence of density ratio on the discharge coefficient of turbine blade film cooling holes[J].Journal of Aerospace Power,2006,21(5):795-799.(in Chinese)
    [15] 周志翔,刘存良,张宗卫,等.主流湍流度对涡轮导向叶片气膜冷却特性影响的实验[J].航空动力学报,2014,29(6):1279-1286.ZHOU Zhixiang,LIU Cunliang,ZHANG Zongwei,et al.Experimental investigation on the effects of mainstream turbulence intensity on film cooling of a turbine vane[J].Journal of Aerospace Power,2014,29(6):1279-1286.(in Chinese)
    [16] 秦晏旻,任静,蒋洪德.主流流向压力梯度对气膜冷却效率的影响[J].工程热物理学报,2014,35(3):461-464.QIN Yanmin,REN Jing,JIANG Hongde.Effects of streamwise pressure gradient on film cooling effectivences[J].Journal of Engineering Thermophysics,2014,35(3):461-464.(in Chinese)
    [17] 刘存良,朱惠人,白江涛,等.基于瞬态液晶全表面测量技术的圆柱形孔气膜冷却特性研究[J].航空动力学报,2009,24(9):1959-1965.LIU Cunliang,ZHU Huiren,BAI Jiangtao,et al.Experimental research on film cooling characteristics of cylindrical hole with transient liquid crystal measurement technique[J].Journal of Aerospace Power,2009,24(9):1959-1965.(in Chinese)
    [18] 刘存良,朱惠人,白江涛,等.基于瞬态液晶测量技术的收缩扩张形孔气膜冷却特性[J].航空学报,2009,30(5):812-818.LIU Cunliang,ZHU Huiren,BAI Jiangtao,et al.Film cooling characteristics of converging-expanding hole with transient liquid crystal measurement technique[J].Acta Aeronautica et Astronautica Sinica,2009,30(5):812-818.(in Chinese)
    [19] WANG H P,OLSON S J,GOLDSTEIN R J,et al.Flow visualization in a linear turbine cascade of high performance turbine blades[J].Journal of Turbomachinery,1997,119(1):1-8.
  • 加载中
计量
  • 文章访问数:  1266
  • HTML浏览量:  219
  • PDF量:  830
  • 被引次数: 0
出版历程
  • 收稿日期:  2016-08-29
  • 刊出日期:  2018-03-28

目录

    /

    返回文章
    返回