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旋转爆轰反压与轴流压气机相互作用数值模拟

聂嘉仪 武郁文 翁春生 夏益青

聂嘉仪, 武郁文, 翁春生, 等. 旋转爆轰反压与轴流压气机相互作用数值模拟[J]. 航空动力学报, 2025, 40(6):20230620 doi: 10.13224/j.cnki.jasp.20230620
引用本文: 聂嘉仪, 武郁文, 翁春生, 等. 旋转爆轰反压与轴流压气机相互作用数值模拟[J]. 航空动力学报, 2025, 40(6):20230620 doi: 10.13224/j.cnki.jasp.20230620
NIE Jiayi, WU Yuwen, WENG Chunsheng, et al. Numerical study on interaction between rotating detonation backpressure and axial compressor[J]. Journal of Aerospace Power, 2025, 40(6):20230620 doi: 10.13224/j.cnki.jasp.20230620
Citation: NIE Jiayi, WU Yuwen, WENG Chunsheng, et al. Numerical study on interaction between rotating detonation backpressure and axial compressor[J]. Journal of Aerospace Power, 2025, 40(6):20230620 doi: 10.13224/j.cnki.jasp.20230620

旋转爆轰反压与轴流压气机相互作用数值模拟

doi: 10.13224/j.cnki.jasp.20230620
基金项目: 国家自然科学基金面上项目(12172177)
详细信息
    作者简介:

    聂嘉仪(2000-),女,硕士生,主要从事组合推进技术研究

    通讯作者:

    武郁文(1987-),男,副研究员,博士,主要从事爆轰推进技术研究。E-mail:y.wu@njust.edu.cn

  • 中图分类号: V231.1

Numerical study on interaction between rotating detonation backpressure and axial compressor

  • 摘要:

    建立了旋转爆轰燃烧与跨声速轴流式压气机Stage 37耦合计算模型,分析旋转爆轰反压形成的前传压力波对压气机内部流场的影响,并探究反压传播速度对压气机工作性能的影响机制。结果表明:压力波传播的过程中相继与静转子的叶片相互作用,产生一系列激波,最终导致动叶前缘的附体激波在旋转爆轰反压作用下略微向上游推移。此外,旋转爆轰反压对静子通道的流场结构影响更为明显,相应地静子对前传压力波的抑制作用相对更强。相比于稳态设计点工况,当压气机出口存在以CJ速度(CJ为Chapman-Jouguet理论的爆轰波传播速度)传播的旋转爆轰反压时,压气机的效率可以提升1%,并且工作范围更宽广。

     

  • 图 1  Stage 37几何模型

    Figure 1.  Geometry of Stage 37

    图 2  计算域

    Figure 2.  Computational domain

    图 3  计算网格

    Figure 3.  Computational gird

    图 4  旋转爆轰反压时程曲线

    Figure 4.  Time history of rotating detonation backpressure

    图 5  50%叶高截面监测点分布

    Figure 5.  Monitor positions at 50% span

    图 6  Stage 37稳态性能曲线

    Figure 6.  Steady performance of NASA Stage 37

    图 7  不同叶高截面的相对马赫数云图

    Figure 7.  Contours of relative Mach number at different spans

    图 8  不同叶高截面的叶片表面静压曲线

    Figure 8.  Static pressure distribution of blade at different spans

    图 9  50%叶高截面压力前传期间的静压云图

    Figure 9.  Contours of static pressure at 50% span during forward propagation

    图 10  爆轰循环周期内监测点静压时程图

    Figure 10.  Time histories of static pressure at monitors in time cycle

    图 11  瞬态压比-流量比波动

    Figure 11.  Fluctuations of transient pressure ratio-flow rate

    表  1  Stage 37主要参数

    Table  1.   Stage 37 main parameters

    参数数值或说明
    设计总压比2.05
    转子叶片数36
    静子叶片数46
    动叶展弦比1.19
    静叶展弦比1.26
    叶型多圆弧叶型
    设计转速/(r/min)17811
    设计质量流量/(kg/s)20.188
    设计等熵效率0.84
    轮毂比0.7
    下载: 导出CSV

    表  2  网格参数

    Table  2.   Parameter of grids

    参数 数值
    转子网格数/106 1.7
    静子网格数/106 1.5
    整体网格数/106 3.2
    第1层边界层厚度/mm 0.001
    下载: 导出CSV

    表  3  网格无关性

    Table  3.   Grid independence

    网格数量/106 总压比 效率
    2.5 1.989 0.841
    3.2 1.990 0.843
    3.9 1.991 0.845
    下载: 导出CSV

    表  4  监测点最大压升

    Table  4.   Maximum pressure rise at monitors MPa

    监测点 $ {p}_{i,\mathrm{s}\mathrm{t}\mathrm{e}\mathrm{a}\mathrm{d}\mathrm{y}} $ $ {p}_{i,\mathrm{m}\mathrm{a}\mathrm{x}} $ $ \Delta {p}_{i,\mathrm{m}\mathrm{a}\mathrm{x}} $
    5 0.0748 0.0713 0.0035
    7 0.1344 0.1513 0.0169
    9 0.1365 0.1601 0.0236
    10 0.1319 0.1428 0.0109
    11 0.1490 0.1683 0.0193
    13 0.1543 0.1754 0.0211
    15 0.1500 0.2300 0.0800
    17 0.1637 0.1963 0.0326
    20 0.1009 0.1078 0.0069
    下载: 导出CSV

    表  5  不同反压传播速度下压气机的工作性能

    Table  5.   Performance of compressor at different back pressure velocities

    反压速度$ {V}_{\mathrm{r}\mathrm{d}\mathrm{e}} $出口流量$ {\dot{m}}_{\mathrm{o}\mathrm{u}\mathrm{t}} $/(kg/s)总压比$ \pi $效率$ \eta $/%
    稳态设计点21.041.97084.39
    稳态近失速点20.982.00584.01
    0.5CJ21.031.99284.73
    0.75CJ21.011.99984.85
    1CJ20.962.00785.38
    下载: 导出CSV
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  • 收稿日期:  2023-09-27
  • 网络出版日期:  2025-02-11

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