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隔板喷嘴间隙对燃烧室声学损耗的作用

王治宇 郭康康 黄卫东 聂万胜

王治宇, 郭康康, 黄卫东, 等. 隔板喷嘴间隙对燃烧室声学损耗的作用[J]. 航空动力学报, 2023, 38(10):2360-2369 doi: 10.13224/j.cnki.jasp.20210399
引用本文: 王治宇, 郭康康, 黄卫东, 等. 隔板喷嘴间隙对燃烧室声学损耗的作用[J]. 航空动力学报, 2023, 38(10):2360-2369 doi: 10.13224/j.cnki.jasp.20210399
WANG Zhiyu, Guo Kangkang, HUANG Weidong, et al. Acoustic damping effect of the gap of baffled injectors in combustion chamber[J]. Journal of Aerospace Power, 2023, 38(10):2360-2369 doi: 10.13224/j.cnki.jasp.20210399
Citation: WANG Zhiyu, Guo Kangkang, HUANG Weidong, et al. Acoustic damping effect of the gap of baffled injectors in combustion chamber[J]. Journal of Aerospace Power, 2023, 38(10):2360-2369 doi: 10.13224/j.cnki.jasp.20210399

隔板喷嘴间隙对燃烧室声学损耗的作用

doi: 10.13224/j.cnki.jasp.20210399
基金项目: 国家自然科学基金(51806246)
详细信息
    作者简介:

    王治宇(1996-),男,博士生,研究领域为燃烧不稳定控制。E-mail:zhiyuwang_nau@sina.com

    通讯作者:

    黄卫东(1970-),男,教授,博士,研究领域为宇航推进。E-mail:wdhuang103@sina.com

  • 中图分类号: V431

Acoustic damping effect of the gap of baffled injectors in combustion chamber

  • 摘要:

    为了定量研究隔板喷嘴对燃烧室声学脉动的抑制作用,基于线性声学理论,在喷嘴间隙大于声学层流边界层厚度的一般情况下,推导了双喷嘴单间隙模型的声学损耗理论计算模型。采用声学有限元方法(FEM)计算1阶声学扰动的衰减速率,与理论推导的相对误差仅为0.81%,并进一步揭示了隔板喷嘴壁面边界层黏性损耗和热损耗对声学脉动的抑制作用机理。在全尺寸发动机燃烧室中,当隔板喷嘴间隙不小于壁面两侧边界层厚度时,验证了燃烧室1阶切向声学模态损耗系数的变化趋势与理论模型一致。能为隔板喷嘴的设计提供一定的指导准则。

     

  • 图 1  液体火箭发动机燃烧室中传统隔板构型[11]

    Figure 1.  Schematic of baffled combustor chamber of liquid-propellant rocket engine[11]

    图 2  带喷嘴隔板的喷注面板结构[16]

    Figure 2.  Schematic of injector-formed baffles mounted on injector-faceplate[16]

    图 3  受扰动时边界层速度分布曲线[23]

    Figure 3.  Geometry for the calculation of velocity profile in oscillating boundary layer[23]

    图 4  相邻喷嘴几何构型与计算域

    Figure 4.  Geometry schematic of adjacent injector and calculation compartment

    图 5  密网格与稀网格对比

    Figure 5.  Comparison of fine grids and coarse grids

    图 6  1阶切向模态(压力云图)

    Figure 6.  1 tangential mode (pressure diagram)

    图 7  1阶振型时域下的振幅变化

    Figure 7.  Amplitudes of 1 tangential mode with respect to time

    图 8  边界层损耗导致的压力衰减

    Figure 8.  Pressure dissipation in terms of boundary layer dissipation

    图 9  黏性损耗导致的压力变化衰减

    Figure 9.  Pressure dissipation in terms of viscous dissipation

    图 10  几何构型和网格划分

    Figure 10.  Geometry schematic and grid

    图 11  不同频率下的声速扰动分布

    Figure 11.  Distribution of acoustic velocity perturbation in terms of frequencies

    图 12  边界层厚度与频率的变化

    Figure 12.  Boundary layer thickness varied with frequency

    图 13  隔板喷嘴燃烧室网格

    Figure 13.  Computational grid of the chamber with baffled injectors

    图 14  监测点和点声源的位置

    Figure 14.  Position of monitoring point and acoustic excitation point

    图 15  1阶切向声学模态

    Figure 15.  1tangential mode shape of acoustic pressure

    图 16  不考虑热黏性损耗时的声压变化

    Figure 16.  Acoustic pressure responses with respect to no thermo-viscous damp

    图 17  1阶切向声学模态时的声压变化

    Figure 17.  Acoustic pressure of 1 tangential mode

    图 18  损耗系数随隔板喷嘴间隙而变化

    Figure 18.  Damping factor varied with gap of injector baffle

    表  1  气体性质参数和几何尺寸

    Table  1.   Properties of gas and geometry

    参数数值参数数值
    T/K2099$c/ ({ {\rm{m} } } /{ {\rm{s} } })$1884.5
    $\rho / ({ {\rm{kg} } } /{ {\rm{m} }^3})$0.358$ \gamma $1.27
    $\mu /10^{-5} ({ {\rm{kg} } } / ({ {\rm{m} } } /{ {\rm{s} } }) )$$4.833$$\nu /10^{-4} ({ {{\rm{m}}} ^2}/{\rm{s}})$$1.35$
    ${C_p}/ ({ {\rm{J} } } / ({ {\rm{kg} } } /{ {\rm{K} } }) )$6257.6Pr0.79
    $R/{\rm{m} }$0.01$\delta /{\rm{m}}$0.0008
    下载: 导出CSV
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出版历程
  • 收稿日期:  2021-07-29
  • 网络出版日期:  2023-07-07

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