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高速条件下吸力面复合角孔气膜冷却特性

王晓增 阚瑞 任明 刘存良

王晓增, 阚瑞, 任明, 等. 高速条件下吸力面复合角孔气膜冷却特性[J]. 航空动力学报, 2023, 38(2):269-278 doi: 10.13224/j.cnki.jasp.20220544
引用本文: 王晓增, 阚瑞, 任明, 等. 高速条件下吸力面复合角孔气膜冷却特性[J]. 航空动力学报, 2023, 38(2):269-278 doi: 10.13224/j.cnki.jasp.20220544
WANG Xiaozeng, KAN Rui, REN Ming, et al. Film cooling characteristics of compound angle hole on suction side under high-speed conditions[J]. Journal of Aerospace Power, 2023, 38(2):269-278 doi: 10.13224/j.cnki.jasp.20220544
Citation: WANG Xiaozeng, KAN Rui, REN Ming, et al. Film cooling characteristics of compound angle hole on suction side under high-speed conditions[J]. Journal of Aerospace Power, 2023, 38(2):269-278 doi: 10.13224/j.cnki.jasp.20220544

高速条件下吸力面复合角孔气膜冷却特性

doi: 10.13224/j.cnki.jasp.20220544
详细信息
    作者简介:

    王晓增(1984-),男,高级工程师,硕士,主要从事航空发动机涡轮叶片设计

  • 中图分类号: V235.1

Film cooling characteristics of compound angle hole on suction side under high-speed conditions

  • 摘要:

    为探究高速条件下涡轮叶片吸力面上复合角孔的气膜冷却特性,在高速风洞中实验测量了吸力面复合角孔的气膜冷却效率与传热系数比,并通过净热通量减少(NHFR)衡量了复合角孔对吸力面的气膜冷却净收益。分析了雷诺数、吹风比以及湍流度对气膜冷却效率、传热系数比及净热通量减少的影响规律,结果表明:低雷诺数下气膜冷却效率受雷诺数影响较大,但当雷诺数增大至6.4×105以上时,气膜冷却效率几乎不再变化;随湍流度的增大,气膜冷却效率整体降低,低吹风比下气膜冷效对雷诺数、湍流度较为敏感。传热系数比随气膜吹风比增加而增大,但在湍流度较大时,气膜冷却对传热系数的影响降低。湍流度的增大使NHFR有所升高。研究表明对高的湍流度工况,吹风比为0.8时复合角孔呈现最佳的气膜冷却性能。

     

  • 图 1  实验装置简图

    Figure 1.  Experimental device schematic diagram

    图 2  实验叶栅

    Figure 2.  Experimental cascade

    图 3  叶片及复合角孔

    Figure 3.  Vane and compound angle hole

    图 4  实验原理简图

    Figure 4.  Schematic diagram of experimental principle

    图 5  在不同Re下的气膜冷却效率(M=0.5)

    Figure 5.  Film cooling effectiveness in different Re M=0.5)

    图 6  在不同Re下的气膜冷却效率(M=2.0)

    Figure 6.  Film cooling effectiveness in different Re M=2.0)

    图 7  在不同吹风比下的气膜冷却效率(Re=6.4×105

    Figure 7.  Film cooling effectiveness in different blowing ratio (Re=6.4×105

    图 8  在所有Re时在不同湍流度下的气膜冷却效率

    Figure 8.  Film cooling effectiveness at all Re in different turbulence intensity

    图 9  在不同Re下的传热系数比(M=0.5)

    Figure 9.  Heat transfer coefficient ratio in different Re M=0.5)

    图 10  在不同Re下的传热系数比(M=2.0)

    Figure 10.  Heat transfer coefficient ratio in different ReM=2.0)

    图 11  在不同吹风比下的传热系数比(Re=6.4×105

    Figure 11.  Heat transfer coefficient ratio in different blowing ratio (Re=6.4×105

    图 12  在所有Re时在不同湍流度下的传热系数比

    Figure 12.  Heat transfer coefficient ratio at all Re in different turbulence intensity

    图 13  在不同Re下的NHFRM=0.5)

    Figure 13.  NHFR in different Re M=0.5)

    图 14  在不同Re下的NHFRM=2.0)

    Figure 14.  NHFR in different Re M=2.0)

    图 15  在不同吹风比下的NHFRRe=6.4×105

    Figure 15.  NHFR in different blowing ratio (Re=6.4×105

    图 16  所有Re下在不同湍流度下的NHFR

    Figure 16.  NHFR at all Re in different turbulence intensity

    表  1  实验工况

    Table  1.   Experimental case

    MaRe/105I/%M
    0.833.0
    6.4
    9.0
    1.5
    15.2
    0.5
    0.8
    1.2
    1.6
    2.0
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-07-26
  • 网络出版日期:  2023-01-09

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