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轴向侧向膨胀与通道曲率耦合影响下的旋转爆震波传播特性研究

曹力文 王可 胡龙雨 高杰 史浩宁 范玮

曹力文, 王可, 胡龙雨, 等. 轴向侧向膨胀与通道曲率耦合影响下的旋转爆震波传播特性研究[J]. 航空动力学报, 2025, 40(4):20240502 doi: 10.13224/j.cnki.jasp.20240502
引用本文: 曹力文, 王可, 胡龙雨, 等. 轴向侧向膨胀与通道曲率耦合影响下的旋转爆震波传播特性研究[J]. 航空动力学报, 2025, 40(4):20240502 doi: 10.13224/j.cnki.jasp.20240502
CAO Liwen, WANG Ke, HU Longyu, et al. Experimental study on the propagation characteristics of rotatingdetonation waves in curved channels under the influence of axial lateral expansion[J]. Journal of Aerospace Power, 2025, 40(4):20240502 doi: 10.13224/j.cnki.jasp.20240502
Citation: CAO Liwen, WANG Ke, HU Longyu, et al. Experimental study on the propagation characteristics of rotatingdetonation waves in curved channels under the influence of axial lateral expansion[J]. Journal of Aerospace Power, 2025, 40(4):20240502 doi: 10.13224/j.cnki.jasp.20240502

轴向侧向膨胀与通道曲率耦合影响下的旋转爆震波传播特性研究

doi: 10.13224/j.cnki.jasp.20240502
基金项目: 国家自然科学基金(52076181)
详细信息
    作者简介:

    曹力文(1998-),男,博士生,主要从事爆震燃烧与爆震推进研究。E-mail:caoliwen@mail.nwpu.edu.cn

    通讯作者:

    王可(1986-),男,教授,博士,主要从事爆震燃烧与爆震推进研究。E-mail:wangk@nwpu.edu.cn

  • 中图分类号: V231.2

Experimental study on the propagation characteristics of rotatingdetonation waves in curved channels under the influence of axial lateral expansion

  • 摘要:

    为揭示轴向侧向膨胀对弯曲通道中爆震波传播特性的影响,在内壁面半径为45 mm的封闭与半封闭弯曲通道中,选用10、20 mm和30 mm这3种预混气高度,燃料与氧化剂分别为乙烯和稀释比为0.5的氮氧混合物,实验研究了不同当量比时侧向膨胀对爆震波的峰值压力、传播速度及传播模态的影响。结果表明:侧向膨胀影响下,爆震波峰值压力和传播速度降低,在贫燃和富燃工况下损失更加明显;随预混气高度降低,压力和速度亏损进一步增加。根据爆震波内壁面Dn/DCJ沿程变化特征,可观察到稳定模态、临界模态、弱不稳定模态、强不稳定模态和缓燃模态。爆震波在封闭弯曲通道内稳定传播的临界内壁面半径为9.07~10.55倍的平均胞格尺寸。引入侧向膨胀影响后,更小的通道曲率有利于降低损失,提升爆震波抵御侧向膨胀的能力,其在半封闭弯曲通道内临界内壁面半径增至15.62~18.32倍胞格尺寸以维持稳定传播。

     

  • 图 1  实验系统示意图

    Figure 1.  Schematic of the experimental system

    图 2  弯曲通道构型示意图

    Figure 2.  Configurations for the curved channels

    图 3  爆震波传播过程示意图

    Figure 3.  Schematic of the detonation wave in a semi-confined channel

    图 4  高速摄像记录的侧向膨胀条件下爆震波稳定传播过程(φ=1.2,h=30 mm)

    Figure 4.  Photography results of the stable propagation process of detonation waves with the lateral expansion (φ=1.2,h=30 mm)

    图 5  不同工况下的爆震波胞格尺寸

    Figure 5.  Cell widths obtained in different conditions

    图 6  侧向膨胀影响下爆震波沿程压力变化(φ=0.8,h=30 mm)

    Figure 6.  Peak pressure along the outer wall with the lateral expansion (φ=0.8, h=30 mm)

    图 7  不同当量比条件下侧向膨胀对爆震波沿程峰值压力的影响(h=30 mm)

    Figure 7.  Peak pressure along the curved channel at different equivalence ratios (h=30 mm)

    图 8  不同预混气高度时侧向膨胀对爆震波沿程峰值压力的影响(φ=1.0)

    Figure 8.  Peak pressure along the curved channel at different mixture heights (φ=1.0)

    图 9  不同预混气高度时侧向膨胀对爆震波沿程峰值压力的影响(φ=0.7)

    Figure 9.  Peak pressure along the curved channel at different mixture heights (φ=0.7)

    图 10  不同预混气高度时侧向膨胀对爆震波沿程峰值压力的影响(φ=2.2)

    Figure 10.  Peak pressure along the curved channel at different mixture heights (φ=2.2)

    图 11  不同预混气高度、化学恰当比时,侧向膨胀对外壁面附近爆震波沿程速度损失的影响

    Figure 11.  Effect of lateral expansion on the velocity deficit near the outer wall at different mixture heights and the stoichiometric ratio

    图 12  不同预混气高度、化学恰当比时,侧向膨胀对中径附近爆震波沿程速度损失的影响

    Figure 12.  Effect of lateral expansion on the velocity deficit near the mean diameter at different mixture heights and the stoichiometric ratio

    图 13  不同预混气高度、化学恰当比时,侧向膨胀对内壁面附近爆震波沿程速度损失的影响

    Figure 13.  Effect of lateral expansion on the velocity deficit near the inner wall at different mixture heights and the stoichiometric ratio

    图 14  封闭通道内不同径向位置处当量比对爆震波速度的影响

    Figure 14.  Effect of the equivalence ratio on the wave velocity at different radial positions in a confined channel

    图 15  半封闭通道内不同径向位置处当量比对爆震波速度的影响(h=30 mm)

    Figure 15.  Effect of the equivalence ratio on the wave velocity at different radial positions in a semi-confined channel(h=30 mm)

    图 16  半封闭通道内不同径向位置处当量比对爆震波速度的影响(h=20 mm)

    Figure 16.  Effect of the equivalence ratio on the wave velocity at different radial positions in a semi-confined channel (h=20 mm)

    图 17  半封闭通道内不同径向位置处当量比对爆震波速度的影响(h=10 mm)

    Figure 17.  Effect of the equivalence ratio on the wave velocity at different radial positions in a semi-confined channel (h=10 mm)

    图 18  不同工况下爆震波在弯曲通道内的传播速度和模态

    Figure 18.  Propagation characteristics along the curved channel at different conditions

    图 19  爆震波在不同传播模态下的高速摄影结果

    Figure 19.  Photography results for different modes of detonation waves

    图 20  侧向膨胀影响下不同预混气高度对应的爆震波传播模态

    Figure 20.  Propagation modes at different mixture heights under the influence of lateral expansion

    表  1  实验工况(ri=45 mm)

    Table  1.   Experimental conditions (ri=45 mm)

    h/mm φ 通道构型
    30 0.55~2.60 全封闭
    0.60~2.60 半封闭
    20 0.70~2.60 半封闭
    10 0.80~2.60 半封闭
    下载: 导出CSV
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  • 收稿日期:  2024-07-26
  • 网络出版日期:  2024-10-31

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