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变涵道比加力/冲压燃烧室两涵掺混特性实验与数值研究

丁婧 邓远灏 单勇 张飞

丁婧, 邓远灏, 单勇, 等. 变涵道比加力/冲压燃烧室两涵掺混特性实验与数值研究[J]. 航空动力学报, 2025, 41(X):20250343 doi: 10.13224/j.cnki.jasp.20250343
引用本文: 丁婧, 邓远灏, 单勇, 等. 变涵道比加力/冲压燃烧室两涵掺混特性实验与数值研究[J]. 航空动力学报, 2025, 41(X):20250343 doi: 10.13224/j.cnki.jasp.20250343
DING Jing, DENG Yuanhao, SHAN Yong, et al. Experimental and numerical investigation of core and bypass flow mixing characteristics in variable-bypass-ratio afterburner/ram combustor[J]. Journal of Aerospace Power, 2025, 41(X):20250343 doi: 10.13224/j.cnki.jasp.20250343
Citation: DING Jing, DENG Yuanhao, SHAN Yong, et al. Experimental and numerical investigation of core and bypass flow mixing characteristics in variable-bypass-ratio afterburner/ram combustor[J]. Journal of Aerospace Power, 2025, 41(X):20250343 doi: 10.13224/j.cnki.jasp.20250343

变涵道比加力/冲压燃烧室两涵掺混特性实验与数值研究

doi: 10.13224/j.cnki.jasp.20250343
详细信息
    作者简介:

    丁婧(2002-),女,硕士生,主要从事航空发动机传热方面的研究。E-mail:1071881314@qq.com

    通讯作者:

    单勇(1978-),男,教授、博士生导师,博士,主要从事飞行器红外隐身和航空发动机传热方面的研究。E-mail:nuaasy@nuaa.edu.cn

  • 中图分类号: V231.3

Experimental and numerical investigation of core and bypass flow mixing characteristics in variable-bypass-ratio afterburner/ram combustor

  • 摘要:

    以变循环发动机可变涵道比加力/冲压燃烧室为研究对象,采用缩比模型流场实验和全尺寸三维数值仿真的方法,揭示不同涵道比、平行混合器出口面积比下的加力燃烧室内部流场特征,定量评价加力燃烧室内速度不均匀度、掺混损失、隔热屏冷却通道外侧机匣壁面温度峰值等参数。研究结果表明:相较于内涵入口均匀流,内涵入口考虑旋流后,旋转的内涵流体与外涵流体增强了剪切混合,严重时引起内涵高温流体部分进入隔热屏冷却通道,致使隔热屏冷却通道外机匣局部温度高达812.97 K。采用平行混合器可有效控制加力/冲压燃烧室总压损失,在3.5%以内。内外涵出口面积比是重要参数,合理的面积分配能够确保外涵道流体有足够的空气进入隔热屏冷却通道,同时有足够的惯性力遏制隔热屏入口段内侧流动分离。小涵道比工况下,增大内外涵出口面积比将导致冷却气量减少约20%,可能造成隔热屏冷却效果变差;同时低动量的外涵流体难以克服逆压梯度,在隔热屏内侧形成回流区,导致火焰稳定器上游径向速度不均匀度恶化至0.10~1.20,对加力燃烧不利。在大涵道比工况下,过小的内外涵出口面积比将导致掺混损失增至3.16%,随着内外涵出口面积比提高,内外涵气流匹配度改善,速度不均匀度范围提升至0.85~1.07,展现出更优的综合性能。

     

  • 图 1  变循环发动机加力/冲压燃烧室模型示意图

    Figure 1.  Afterburner/Ram combustor geometric model

    图 2  实验系统图

    Figure 2.  Experimental system diagram

    图 3  实验段实物图

    Figure 3.  Physical map of test section

    图 4  实验测量位点示意图

    Figure 4.  Schematic diagram of test measure point

    图 5  计算区域及网格

    Figure 5.  Grid of calculating domain

    图 6  网格独立性验证

    Figure 6.  Grid convergence analysis

    图 7  混合器下游切面仿真与实验数据对比

    Figure 7.  Comparison of CFD and experimental data at the mixer downstream cross-section

    图 8  火焰稳定器前切面仿真与实验数据对比

    Figure 8.  Comparison of CFD and experimental data at the flame holder upstream plane

    图 9  内涵进气面速度和温度云图

    Figure 9.  Contour plots of velocity and temperature at the core duct inlet plane

    图 10  中心对称截面速度云图(内涵有无旋流对比)

    Figure 10.  Contours of velocity on the central symmetric plane (with/without swirl in the core flow)

    图 11  中心对称截面温度云图(内涵有无旋流对比)

    Figure 11.  Contours of temperature on the central symmetric plane (with/without swirl in the core flow)

    图 12  火焰稳定器上游截面速度云图(内涵有无旋流对比)

    Figure 12.  Velocity contours on the upstream cross-section of the flame holder (with/without swirl in the core flow)

    图 13  外/内涵入口压比随混合器出口面积分配的变化曲线

    Figure 13.  Curve of bypass/core inlet pressure ratio versus mixer exit area allocation

    图 14  小涵道比条件下中心对称截面速度云图(不同混合器出口面积分配对比)

    Figure 14.  Contours of velocity on the central symmetric plane under low bypass ratio (with different mixer exit area allocations)

    图 15  小涵道比条件下中心对称截面温度云图(不同混合器出口面积分配对比)

    Figure 15.  Contours of temperature on the central symmetric plane under low bypass ratio (with different mixer exit area allocations)

    图 16  小涵道比条件下火焰稳定器上游横截面速度云图(不同混合器出口面积分配对比)

    Figure 16.  Velocity contours at flame holder upstream cross-section under low bypass ratio (with different mixer exit area allocations)

    图 17  大涵道比条件下中心对称截面速度云图(不同混合器出口面积分配对比)

    Figure 17.  Contours of velocity on the central symmetric plane under high bypass ratio (with different mixer exit area allocations)

    图 18  大涵道比条件下中心对称截面温度云图(不同混合器出口面积分配对比)

    Figure 18.  Contours of temperature on the central symmetric plane under high bypass ratio (with different mixer exit area allocations)

    图 19  大涵道比条件下火焰稳定器上游横截面速度云图(不同混合器出口面积分配对比)

    Figure 19.  Velocity contours at Flame Holder upstream cross-section under high bypass ratio (with different mixer exit area allocations)

    表  1  实验工况下模型进口和出口参数

    Table  1.   Inlet and outlet parameters for the experimental model

    工况 外涵入口 内涵入口 pb/kPa
    qm,inl/(kg/s) Tin1/K pin1/kPa qm,in2/(kg/s) Tin2/K pin2/kPa
    小涵道比 0.56 313.15 376.94 1.76 731.15 378.51 367.5
    大涵道比 0.90 313.15 356.51 1.47 653.15 349.24 336.6
    下载: 导出CSV

    表  2  仿真与实验参数对比

    Table  2.   Comparison of CFD and experimental parameters

    工况 $ {\sigma _{\text{p}}} $ $ \Delta {C_{\theta ,{\text{h}}}} $ $ \Delta {C_{r,{\text{h}}}} $
    CFD EXP CFD EXP CFD EXP
    小涵道比 0.0153 0.0151 0.90~1.17 0.80~1.24 0.74~1.25 0.79~1.24
    大涵道比 0.0284 0.0254 0.89~1.04 0.77~1.23 0.70~1.22 0.78~1.15
    下载: 导出CSV

    表  3  内涵旋流对加力燃烧室性能的影响

    Table  3.   Impact of core flow swirl on afterburner performance

    参数 无旋流 有旋流
    $ {\sigma _{\text{p}}} $ 0.0011 0.0041
    $ \phi $ 0.060 0.073
    $ {T_{{\text{l}} - {\text{max}}}}{\text{/K}} $ 484.20 812.97
    $ \Delta {C_{\theta ,{\text{h}}}} $ 0.99~1.01 0.79~1.13
    $ \Delta {C_{r,{\text{h}}}} $ 0.10~1.20 0.93~1.19
    下载: 导出CSV

    表  4  混合器出口面积影响的参数对比表

    Table  4.   Parameter comparison table of mixer exit area effects

    工况 $ {A_{16}}/{A_6} $ $ {\sigma _{\text{p}}} $ $ \phi $ $ {T_{{\text{l}} - {\text{max}}}}{\text{/K}} $ $ \Delta {C_{\theta ,{\text{h}}}} $ $ \Delta {C_{r,{\text{h}}}} $
    小涵道比 0.14 0.0043 0.254 676.31 0.99~1.00 0.75~1.08
    0.20 0.0015 0.156 543.46 0.98~1.01 0.32~1.11
    0.22 0.0010 0.115 506.67 0.99~1.01 0.21~1.16
    0.26 0.0007 0.060 484.20 0.99~1.01 0.10~1.20
    大涵道比 0.14 0.0316 0.438 708.73 0.97~1.02 0.75~1.27
    0.20 0.0108 0.368 667.69 0.99~1.01 0.78~1.17
    0.22 0.0073 0.339 630.05 0.99~1.01 0.80~1.13
    0.26 0.0185 0.283 593.98 0.99~1.01 0.85~1.07
    下载: 导出CSV
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  • 收稿日期:  2025-07-19
  • 网络出版日期:  2025-11-26

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