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自燃推进剂模型发动机纵向燃烧不稳定试验

楚威 姜传金 任永杰 仝毅恒 徐伯起 郭康康 聂万胜

楚威, 姜传金, 任永杰, 等. 自燃推进剂模型发动机纵向燃烧不稳定试验[J]. 航空动力学报, 2025, 40(5):20230580 doi: 10.13224/j.cnki.jasp.20230580
引用本文: 楚威, 姜传金, 任永杰, 等. 自燃推进剂模型发动机纵向燃烧不稳定试验[J]. 航空动力学报, 2025, 40(5):20230580 doi: 10.13224/j.cnki.jasp.20230580
CHU Wei, JIANG Chuanjin, REN Yongjie, et al. Experiment on longitudinal combustion instability of a hypergolic propellant model engine[J]. Journal of Aerospace Power, 2025, 40(5):20230580 doi: 10.13224/j.cnki.jasp.20230580
Citation: CHU Wei, JIANG Chuanjin, REN Yongjie, et al. Experiment on longitudinal combustion instability of a hypergolic propellant model engine[J]. Journal of Aerospace Power, 2025, 40(5):20230580 doi: 10.13224/j.cnki.jasp.20230580

自燃推进剂模型发动机纵向燃烧不稳定试验

doi: 10.13224/j.cnki.jasp.20230580
基金项目: 国家自然科学基金(12002386); 基础科研项目
详细信息
    作者简介:

    楚威(1996-),男,博士生,主要从事液体火箭发动机燃烧稳定性研究。E-mail:c_w1996@163.com

    通讯作者:

    仝毅恒(1987-),男,讲师,博士,主要从事喷雾燃烧领域的研究。E-mail:yiheng_tong@sina.com

  • 中图分类号: V434+.3

Experiment on longitudinal combustion instability of a hypergolic propellant model engine

  • 摘要:

    基于自燃推进剂液/液双旋流喷嘴,设计多喷嘴模型火箭发动机,通过试验研究了氧燃比、缩进长度对自燃推进剂模型火箭发动机高频纵向燃烧不稳定的影响。结果表明:在0.4 mm缩进时,2阶纵向模态会出现“分频”现象,而该现象在更大缩进长度时不会发生,推测该现象与液/液双旋流喷嘴内、外锥形液膜间撞击波动导致的释热波动有关。随着缩进长度的增大,模型发动机纵向燃烧不稳定减弱,这与燃烧释热区域向缩进室内移动,导致其抵抗燃烧室压力扰动能力增强有关。在设计流量下,增大氧燃比使得模型发动机纵向燃烧不稳定减弱,但仍有从1阶纵向模态主导向2阶纵向模态主导过渡的趋势,即2阶纵向模态振荡幅值超过1阶纵向模态振荡幅值;在推进剂总流量偏离设计流量−14%的工况下,增大氧燃比使得2阶纵向模态显著增强,1阶纵向模态会显著减弱。

     

  • 图 1  试验系统示意图和热试车图

    Figure 1.  Schematic of the experiment system and diagram of the combustor hot-fire test

    图 2  模型发动机和喷注器几何结构

    Figure 2.  Geometries of the model engine and injector

    图 3  试验3工况热试车过程压力信号

    Figure 3.  Pressure signal of test No.3 during a hot-fire test

    图 4  Probe 1处高频压力信号的PSD分析(试验3)

    Figure 4.  PSD of high frequency pressure signal at Probe 1 (test No.3)

    图 5  Probe 1处高频压力信号的STFT分析(试验3)

    Figure 5.  STFT of high frequency pressure signal at Probe 1 (test No.3)

    图 6  Probe 1处高频压力信号在不同时间段的PSD分析(试验3)

    Figure 6.  PSD of high frequency pressure signal over different time periods at Probe 1 (test No.3)

    图 7  试验 1~试验 8 高频压力信号的 STFT 分析

    Figure 7.  STFT of high frequency pressure signal in test No.1— test No.8

    图 8  振荡幅值随缩进长度的变化

    Figure 8.  Variation of vibration magnitude with recess length

    图 9  振荡频率和振荡幅值随氧燃比的变化

    Figure 9.  Variation of vibration frequency and magnitude with γO/F

    图 10  α值随氧燃比的变化

    Figure 10.  Variation of α with γO/F

    表  1  试验工况

    Table  1.   Summary of the experiment conditions

    试验编号 Lr/mm $ \dot{{m}_{{\mathrm{f}}}} $/(g/s) $ \dot{{m}_{{\mathrm{O}}}} $/(g/s) γO/F pc/MPa
    1 0.4 111 187 1.685 0.76
    2 0.4 120 186 1.550 0.78
    3 0.4 137 221 1.613 0.91
    4 0.4 117 246 2.103 0.98
    5 1 136 214 1.574 0.90
    6 1 85 253 2.976 0.84
    7 2 138 227 1.645 0.93
    8 2 123 247 2.006 0.98
    下载: 导出CSV

    表  2  不同时间段内不同频段的平均功率

    Table  2.   Average power in different frequency bands over different time periods

    时间/s PF1/10−6 MPa2 PF2/10−6 MPa2 S/10−6 MPa2
    0.5~12.598.6811.27
    1~1.56.305.2411.54
    S0.5~1 s/S1~1.5 s0.977
    下载: 导出CSV
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  • 收稿日期:  2023-09-11
  • 网络出版日期:  2024-06-29

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