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

带前缘涡轮动叶内冷通道流动换热数值模拟

刘裕盛 吴宏 徐国强

刘裕盛, 吴宏, 徐国强. 带前缘涡轮动叶内冷通道流动换热数值模拟[J]. 航空动力学报, 2012, 27(4): 837-845.
引用本文: 刘裕盛, 吴宏, 徐国强. 带前缘涡轮动叶内冷通道流动换热数值模拟[J]. 航空动力学报, 2012, 27(4): 837-845.
LIU Yu-sheng, WU Hong, XU Guo-qiang. Numerical simulation of flow and heat transfer in internal cooling blade channel with leading-edge[J]. Journal of Aerospace Power, 2012, 27(4): 837-845.
Citation: LIU Yu-sheng, WU Hong, XU Guo-qiang. Numerical simulation of flow and heat transfer in internal cooling blade channel with leading-edge[J]. Journal of Aerospace Power, 2012, 27(4): 837-845.

带前缘涡轮动叶内冷通道流动换热数值模拟

基金项目: 国家自然科学基金(50976008)

Numerical simulation of flow and heat transfer in internal cooling blade channel with leading-edge

  • 摘要: 在静止条件下,通过数值模拟的方法对接近真实的带前缘涡轮工作叶片腔模型内的流动与换热进行了分析.结果表明:腔内斜肋引发的三维涡对换热产生了巨大的影响,在一倍肋高范围内, Y-Z 和 X-Y 平面上都出现了肋后涡,使得此处传热系数降低;在 X-Z 平面上,第2通道产生一对方向相反的涡,第3通道只产生一个涡.两个通道中的涡都占据整个横截面,这些涡增加了通道流阻.冲击和气膜流动主导了前缘通道内的换热,冲击产生的一对涡加强了流动掺混,促进了前缘吸、压力面上的换热,而高速的气膜出流推动了这一过程.相同流量工况下,第2通道带肋表面的平均换热和局部换热都是最好的,而光滑的第1通道总压降最小,综合换热性能在各个通道中最高.随着雷诺数的增加,各通道吸、压力面的局部换热和平均换热都增强,但压降系数变化不大.

     

  • [1] Kiml R,Mochizuki S,Murata A.Effects of rib arrangements on heat transfer and flow behavior in a rectangular rib-roughened passage:application to cooling of gas turbine blade trailing edge[J].Journal of Heat Transfer,2001,123(4):675-681.
    [2] Casarsa L,Cakan M,Arts T.Characterization of the velocity and heat transfer fields in an internal cooling channel with high blockage ratio.ASME Paper GT2002-30207,2002.
    [3] Rau G,Cakan M,Moeller D,et al.The effect of periodic ribs on local aerodynamic and heat transfer performance of a straight cooling channel[J].Journal of Turbomachinery,1998,120(2):368-375.
    [4] Elfert M,Jarius M P,Weigand B.Detailed flow investigation using PIV in a typical turbine cooling geometry with ribbed walls.ASME Paper GT2004-53566,2004.
    [5] Lee S W,Ahn H S,Lau S C.Heat(mass) transfer distribution in a two-pass trapezoidal channel with a 180 deg turn[J].Journal of Heat Transfer,2007,129(11):1529-1537.
    [6] Rallabandi A P,Yang H T,Han J C.Heat transfer and pressure drop correlations for square channels with 45 deg ribs at high Reynolds numbers[J].Journal of Heat Transfer,2009,131(7):1-10.
    [7] Giovanni T,Roberto A.Forced convection heat transfer in channels with rib turbulators inclined at 45 deg[J].Journal of Turbomachinery,2009,131(2):1-10.
    [8] Park J S,Han J C,Ou S,et al.Heat transfer performance comparisons of five different rectangular channels with parallel angled ribs[J].International Journal of Heat and Mass Transfer,1992,35(11):2891-2903.
    [9] Liu Y H,Han J C,Huh M,et al.High rotation number effect on heat transfer in a triangular channel with 45°,inverted 45°,and 90° ribs.ASME Paper GT2009-59216,2009.
    [10] Amro M,Weigand B,Poser R,et al.An experimental investigation of the heat transfer in a ribbed triangular cooling channel[J].International Journal of Thermal Sciences,2007,46(5):491-500.
    [11] Taslim,M E,Khanicheh A.Experimental and numerical study of impingement on an airfoil leading edge with and without showerhead and gill film holes[J].Journal of Turbomachinery,2006,128(2):310-320.
    [12] Taslim,M E,Bethka D.Experimental and numerical impingement heat transfer in an airfoil leading-edge cooling channel with cross-flow[J].Journal of Turbomachinery,2009,131(1):1-7.
    [13] Chambers A C,Gillespie D R H,Ireland P T,et al.Enhancement of impingement cooling in a high cross flow channel using shaped impingement cooling holes[J].Journal of Turbomachinery,2010,132(2):1-8.
    [14] Ravelli S,Dobrowolski L,Bogard D G.Evaluating the effects of internal impingement cooling on a film cooled turbine blade leading edge.ASME Paper GT2010-23002,2010.
    [15] LIU Zhao,FENG Zhenping,SONG Liming.Numerical study of flow and heat transfer of impingement cooling on model of turbine blade leading edge.ASME Paper GT2010-23711,2010.
  • 加载中
计量
  • 文章访问数:  1837
  • HTML浏览量:  295
  • PDF量:  539
  • 被引次数: 0
出版历程
  • 收稿日期:  2011-05-13
  • 修回日期:  2011-10-10
  • 刊出日期:  2012-04-28

目录

    /

    返回文章
    返回