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涡轮导叶压力面分区域复合角气膜冷却特性

张深 李国庆 刘浩 康忠 张燕峰 卢新根

张深, 李国庆, 刘浩, 等. 涡轮导叶压力面分区域复合角气膜冷却特性[J]. 航空动力学报, 2024, 39(3):20220177 doi: 10.13224/j.cnki.jasp.20220177
引用本文: 张深, 李国庆, 刘浩, 等. 涡轮导叶压力面分区域复合角气膜冷却特性[J]. 航空动力学报, 2024, 39(3):20220177 doi: 10.13224/j.cnki.jasp.20220177
ZHANG Shen, LI Guoqing, LIU Hao, et al. Multi region compound angle film cooling characteristics on pressure side of turbine guide vane[J]. Journal of Aerospace Power, 2024, 39(3):20220177 doi: 10.13224/j.cnki.jasp.20220177
Citation: ZHANG Shen, LI Guoqing, LIU Hao, et al. Multi region compound angle film cooling characteristics on pressure side of turbine guide vane[J]. Journal of Aerospace Power, 2024, 39(3):20220177 doi: 10.13224/j.cnki.jasp.20220177

涡轮导叶压力面分区域复合角气膜冷却特性

doi: 10.13224/j.cnki.jasp.20220177
基金项目: 国家自然科学基金(51976214); 航空发动机及燃气轮机基础科学中心项目(2022-B-Ⅱ-006-004)
详细信息
    作者简介:

    张深(1997-),男,硕士生,主要从事涡轮叶片气膜冷却研究

    通讯作者:

    李国庆(1982-),男,研究员,博士,主要从事涡轮热端部件先进冷却结构设计技术研究。E-mail:liguoqing@iet.cn

  • 中图分类号: V231.1

Multi region compound angle film cooling characteristics on pressure side of turbine guide vane

  • 摘要:

    针对通道二次流造成涡轮叶片压力面气膜轨迹发生偏转的现象,提出了沿展向分区域布置复合角的设计概念。以高压涡轮导叶HS1A为研究对象,采用数值模拟的方法,在出口雷诺数为2.3×105的工况下,分析了二次流、复合角和吹风比对气膜冷却特性的影响。结果表明:近端区二次流产生的径向潜流具有促进气膜展向覆盖的能力,相较于叶中区提高了气膜孔出口下游的冷却效率,但也会加剧射流和主流的掺混,减小气膜的有效覆盖长度;针对不同展向区域的二次流大小,精细化布置各区域的气膜孔复合角,可以将气膜轨迹的偏转角度全部修正为0°,同时将平均气膜冷却效率提升了10.42%;复合角冷却模型在吹风比为0.5~1.0时具有较好的范围适用性,吹风比增大至1.3时气膜轨迹会发生反向偏转。

     

  • 图 1  气膜冷却模型

    Figure 1.  Film cooling model

    图 2  气膜冷却模型几何参数

    Figure 2.  Geometry of the film cooling model

    图 3  计算域网格示意图

    Figure 3.  Schematic diagram of computational domain grid

    图 4  等熵马赫数分布

    Figure 4.  Distribution of isentropic Mach numbers

    图 5  叶根至叶中边界层分布

    Figure 5.  Distribution of boundary layer from root to middle of the blade

    图 6  叶根附近三维流线

    Figure 6.  Three-dimensional streamlines near root of the blade

    图 7  偏转规律相似性对比

    Figure 7.  Comparison of deflection law similarity

    图 8  不同复合角气膜冷却效率云图

    Figure 8.  Contours of film cooling effectiveness at different compound angle

    图 9  不同复合角平均气膜冷却效率分布

    Figure 9.  Distribution of averaged film cooling effectiveness at different compound angle

    图 10  近端区气膜冷却效率分布

    Figure 10.  Distribution of film cooling effectiveness near endwall

    图 11  过渡区气膜冷却效率分布

    Figure 11.  Distribution of film cooling effectiveness in the transition zone

    图 12  不同区域气膜冷却效率分布

    Figure 12.  Distribution of film cooling effectiveness in different zones

    图 13  气膜孔出口下游流动结构

    Figure 13.  Flow structure downstream of the film hole

    图 14  不同吹风比工况下气膜冷却效率分布

    Figure 14.  Distribution of film cooling effectiveness under different blowing ratios

    图 15  TGV07近端区不同吹风比气膜冷却效率

    Figure 15.  Film cooling effectiveness of different blowing ratios near the endwall for TGV07

    表  1  叶片压力面气膜孔分区域复合角分布

    Table  1.   Composite angle distribution of single film holes on pressure side of blade (°)

    工况 H1 H2 H3 H4 H5 H6 H7 H8 H9
    TGV00 0 0 0 0 0 0 0 0 0
    TGV01 −5 −3 −2 −1 0 2 4 6 10
    TGV02 −15 −9 −6 −3 0 4 8 12 20
    TGV03 −25 −15 −10 −5 0 6 12 18 30
    TGV04 −35 −21 −14 −7 0 8 16 24 40
    TGV05 −45 −27 −18 −9 0 10 20 30 50
    TGV06 −53 −33 −22 −11 0 12 24 36 57
    TGV07 −45 −30 −15 −7 0 7 15 30 45
    注:复合角指向叶尖为负值,指向叶根为正值。
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-03-31
  • 网络出版日期:  2023-10-30

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