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跨声速压气机转子叶栅变静压比实验方法

魏巍 任思源 李学臣 时培杰 马护生

魏巍, 任思源, 李学臣, 等. 跨声速压气机转子叶栅变静压比实验方法[J]. 航空动力学报, 2024, 39(11):20240087 doi: 10.13224/j.cnki.jasp.20240087
引用本文: 魏巍, 任思源, 李学臣, 等. 跨声速压气机转子叶栅变静压比实验方法[J]. 航空动力学报, 2024, 39(11):20240087 doi: 10.13224/j.cnki.jasp.20240087
WEI Wei, REN Siyuan, LI Xuechen, et al. Experimental method of varying static pressure ratio for a transonic compressor rotor cascade[J]. Journal of Aerospace Power, 2024, 39(11):20240087 doi: 10.13224/j.cnki.jasp.20240087
Citation: WEI Wei, REN Siyuan, LI Xuechen, et al. Experimental method of varying static pressure ratio for a transonic compressor rotor cascade[J]. Journal of Aerospace Power, 2024, 39(11):20240087 doi: 10.13224/j.cnki.jasp.20240087

跨声速压气机转子叶栅变静压比实验方法

doi: 10.13224/j.cnki.jasp.20240087
详细信息
    作者简介:

    魏巍(1987-),男,工程师,硕士,主要从事叶轮机械气动热力学方面的研究。E-mail:nwtu@163.com

    通讯作者:

    李学臣(1981-),男,工程师,博士,主要从事叶轮机械流动显示与测试方面的研究。E-mail:xuechen810@126.com

  • 中图分类号: V231.3

Experimental method of varying static pressure ratio for a transonic compressor rotor cascade

  • 摘要:

    针对跨声速压气机平面叶栅变静压比实验问题,采用改变实验叶栅模型叶片数和调节背压的方式开展跨声速压气机转子叶栅实验方法研究,并基于计算流体力学(CFD)预测的叶片表面等熵马赫数分布发展了一种来流流场马赫数标定方法,并指导L030-4压气机转子叶栅近设计点的高静压比实验。研究结果表明减小叶片数和调节背压相结合的方法成功实现压气机叶栅变静压比的实验目的,模型7个叶片时可获得较好的实验效果;基于CFD的来流流场马赫数标定方法实现了L030-4压气机叶栅近设计点高静压比实验,获得的叶栅总压损失、静压比、出口气流角和轴向密流比参数同国外风洞实验数据相比,相对偏差均小于4%,验证了标定方法的合理性。

     

  • 图 1  L030-4跨声速压气机转子叶型及主要流场特征

    Figure 1.  L030-4 transonic compressor rotor profile and flow filed characteristics

    图 2  变密度平面叶栅风洞截面图

    Figure 2.  Cross section of the variable density cascade wind tunnel

    图 3  MAP程序网格及边界条件分布图

    Figure 3.  Computational grid and boundary conditions for MAP

    图 4  MAP程序预测ARL-SL19超声速叶栅流场(Ma1=1.58, π=2.41)

    Figure 4.  Supersonic flow field of ARL-SL19 cascade predicted by MAP (Ma1=1.58, π=2.41)

    图 5  叶片表面等熵马赫数分布图(Ma1=0.82)

    Figure 5.  Blade surface isentropic Mach number distributions (Ma1=0.82)

    图 6  CARDC风洞双栅距尾迹参数分布图(Ma1=0.82)

    Figure 6.  Wake parameter distributions of CARDC wind tunnel among two pitches (Ma1=0.82)

    图 7  不同叶片数时叶片表面等熵马赫数分布

    Figure 7.  Blade surface isentropic Mach number distributions with different blade numbers

    图 8  不同叶片数时实验与CFD预测马赫数云图分布

    Figure 8.  Experimental schlieren pictures and CFD predicted Mach number contours with different blade numbers

    图 9  近设计点双栅距叶栅尾迹参数分布(Ma1=1.1, π=1.48)

    Figure 9.  Cascade wake parameter distributions among two pitches on near design condition (Ma1=1.1, π=1.48)

    图 10  近设计点叶片表面等熵马赫数(Ma1=1.1)

    Figure 10.  Blade surface isentropic Mach number distributions on near design condition (Ma1=1.1)

    图 11  近设计点实验纹影图与MAP预测马赫数云图

    Figure 11.  Experimental schlieren picture and MAP predicted Mach number contour on near design condition

    表  1  叶栅气动参数分布表(Ma1=0.82)

    Table  1.   Aerodynamic parameters of experimental cascade (Ma1=0.82)

    数据
    来源
    总压损失
    ωt
    静压比
    π
    出口
    气流角β2/(°)
    出口
    马赫数Ma2
    CARDC 0.0354 1.21 45.76 0.586
    DLR 0.0342 1.25 45.15
    MAP 0.0324 1.22 45.05 0.583
    下载: 导出CSV

    表  2  实验与CFD参数对比表

    Table  2.   Parameter comparisons between experiments and CFD

    参数 9片叶片 7片叶片 5片叶片
    实验控制马赫数Ma 1.1 1.1 1.1
    实验总压损失ωt 0.143 0.111 0.198
    实验静压比π 1.40 1.38 1.34
    实验轴向密流比Av 1.04 1.1 1.0
    CFD计算马赫数Ma 1.05 1.20 1.29
    CFD总压损失ωt 0.12 0.112 0.189
    CFD静压比π 1.34 1.65 1.72
    CFD轴向密流比Av 1.05 1.1 1.0
    实验静压比修正值π 1.32 1.58 1.69
    下载: 导出CSV

    表  3  近设计工况参数对比表

    Table  3.   Parameter comparisons on near design condition

    参数CARDCDLRMAP
    进口马赫数Ma11.11.11.1
    总压损失ωt0.0880.0850.068
    静压比π1.481.521.54
    出口气流角β2/(°)46.245.543.6
    轴向密流比Av1.161.151.15
    下载: 导出CSV
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