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无导叶对转压气机动/动干涉对叶片表面气动载荷影响研究

余常赋 徐强仁 郝龙 赵巍 杨学森 赵庆军

余常赋, 徐强仁, 郝龙, 等. 无导叶对转压气机动/动干涉对叶片表面气动载荷影响研究[J]. 航空动力学报, 2026, 41(7):20240767 doi: 10.13224/j.cnki.jasp.20240767
引用本文: 余常赋, 徐强仁, 郝龙, 等. 无导叶对转压气机动/动干涉对叶片表面气动载荷影响研究[J]. 航空动力学报, 2026, 41(7):20240767 doi: 10.13224/j.cnki.jasp.20240767
Yu Changfu, Xu Qiangren, Hao Long, et al. Effect of rotor-rotor interaction on blade aerodynamic loads in a vaneless counter-rotating compressor[J]. Journal of Aerospace Power, 2026, 41(7):20240767 doi: 10.13224/j.cnki.jasp.20240767
Citation: Yu Changfu, Xu Qiangren, Hao Long, et al. Effect of rotor-rotor interaction on blade aerodynamic loads in a vaneless counter-rotating compressor[J]. Journal of Aerospace Power, 2026, 41(7):20240767 doi: 10.13224/j.cnki.jasp.20240767

无导叶对转压气机动/动干涉对叶片表面气动载荷影响研究

doi: 10.13224/j.cnki.jasp.20240767
基金项目: 国家科技重大专项(J2019-Ⅲ-0010-0054,J2019-Ⅱ-0016-0037)
详细信息
    作者简介:

    余常赋(1998-),男,博士生,主要从事叶轮机械气动热力学研究。E-mail:yuchangfu@iet.cn

    通讯作者:

    赵庆军(1977-),男,研究员,博士,主要从事叶轮机械气动热力学研究。E-mail:zhaoqingjun@iet.cn

  • 中图分类号: V231.3

Effect of rotor-rotor interaction on blade aerodynamic loads in a vaneless counter-rotating compressor

  • 摘要:

    采用非定常数值模拟研究高负荷无导叶对转压气机级间动/动干涉下叶片表面动态载荷特性。研究表明:上游转子扰动源于下游转子外伸激波扫掠,集中于压力面尾缘结尾激波之后,脉动强度最大可达25000 Pa,平均为2485.5 Pa,与上游转子叶片表面平均静压的比值分别为24.91%和2.48%,主频为下游转子叶片相对通过频率及其倍频;下游转子扰动源于上游转子尾迹、尾迹涡及其势流,遍布整个叶片表面,脉动强度与主流相对速度分布强相关,在超声速区为8000 Pa,在亚声速区最大可达40000 Pa,平均为6331.25 Pa,其与下游转子叶片表面平均静压的比值分别为0.28%、14.21%和2.25%,主频为上游转子叶片相对通过频率及其倍频。上游转子叶片表面时均力为102.8 N,脉动幅值为21.3 N,压力面受力远大于吸力面;下游转子叶片表面时均力为698.5 N,脉动幅值仅为7.2 N,吸力面与压力面相互抵消。动/动干涉显著强化叶片载荷水平,上游转子扰动集中于叶片尾缘,下游转子集中于叶片表面亚声速区,载荷受激波和叶片表面相对速度分布影响。

     

  • 图 1  两级无导叶对转压气机子午流道

    Figure 1.  Meridian channel of two-stage vaneless counter-rotating compressor

    图 2  叶片叶尖、前缘及尾缘网格

    Figure 2.  Mesh at blade tip, LE and TE

    图 3  不同物理时间步R1 50%叶高监测点无量纲静压脉动

    Figure 3.  Normalized static pressure of 50% span monitor points of R1 at different time steps

    图 4  R1和R2交界面计算结果不连续

    Figure 4.  Simulation result discontinuous of R1 and R2 interface

    图 5  3个叶高相对马赫数云图

    Figure 5.  Relative Mach number in three spans

    图 6  叶片表面激波函数

    Figure 6.  Shock function on blade surface

    图 7  50%叶高无量纲静压

    Figure 7.  Normalized static pressure in 50% span

    图 8  R1的叶尖泄漏流流线

    Figure 8.  Streamline of tip leakage flow at R1

    图 9  R2的叶尖泄漏流流线

    Figure 9.  Streamline of tip leakage flow at R2

    图 10  50%叶高$ \dfrac{4}{8}T $及$ \dfrac{8}{8}T $时刻的熵

    Figure 10.  Entropy at $ \dfrac{4}{8}T $ and $ \dfrac{8}{8}T $ in 50% span

    图 11  典型叶高R1叶片表面载荷

    Figure 11.  Loading at typical spans in R1 blade surface

    图 12  典型叶高R2叶片表面载荷

    Figure 12.  Loading at typical spans in R2 blade surface

    图 13  叶片表面非定常静压脉动强度分布

    Figure 13.  Unsteady pressure fluctuation intensity distribution on blade surface

    图 14  Stage 37动静叶片表面非定常静压脉动强度分布

    Figure 14.  Unsteady pressure fluctuation intensity distribution on rotor and stator blade surfaces of Stage 37

    图 15  叶片表面力随时间变化

    Figure 15.  Force of blade surface varying with time

    图 16  叶片表面监测点布置

    Figure 16.  Monitor points on blade surfaces

    图 17  监测点静压脉动

    Figure 17.  Pressure fluctuation of monitor points

    图 18  静压监测点频谱图

    Figure 18.  Pressure spectrum of monitor points

    表  1  高负荷对转压气机主要设计参数

    Table  1.   Main design parameters of highly-loaded counter-rotating compressor

    参数数值
    R1R2
    叶尖负荷系数0.400.49
    叶片数2313
    叶尖间隙/mm0.20.2
    流量系数0.400.39
    叶尖切线速度/(m/s)416495
    中径扩散因子0.400.49
    下载: 导出CSV

    表  2  网格无关性计算结果

    Table  2.   Grid independency solution

    网格数/104 流量系数 压升系数 等熵效率/% 最大偏差/%
    113 0.3395 5.4526 80.01 0.28
    239 0.3388 5.4533 80.23 0.09
    360 0.3386 5.4484 80.30
    下载: 导出CSV

    表  3  Stage 37主要设计参数

    Table  3.   Main design parameters of Stage 37

    参数数值
    叶尖负荷系数0.37
    叶片数36
    叶尖间隙/mm0.356
    流量系数0.44
    叶尖切线速度/(m/s)455
    下载: 导出CSV
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  • 收稿日期:  2024-11-13
  • 网络出版日期:  2026-01-15

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