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基于煤油燃料的斜爆轰发动机性能数值模拟

杜鹏 薛瑞 王晨 张云天 徐朝启

杜鹏, 薛瑞, 王晨, 等. 基于煤油燃料的斜爆轰发动机性能数值模拟[J]. 航空动力学报, 2023, 38(10):2349-2359 doi: 10.13224/j.cnki.jasp.20210670
引用本文: 杜鹏, 薛瑞, 王晨, 等. 基于煤油燃料的斜爆轰发动机性能数值模拟[J]. 航空动力学报, 2023, 38(10):2349-2359 doi: 10.13224/j.cnki.jasp.20210670
DU Peng, XUE Rui, WANG Chen, et al. Numerical simulation of oblique detonation engine performance based on kerosene fuel[J]. Journal of Aerospace Power, 2023, 38(10):2349-2359 doi: 10.13224/j.cnki.jasp.20210670
Citation: DU Peng, XUE Rui, WANG Chen, et al. Numerical simulation of oblique detonation engine performance based on kerosene fuel[J]. Journal of Aerospace Power, 2023, 38(10):2349-2359 doi: 10.13224/j.cnki.jasp.20210670

基于煤油燃料的斜爆轰发动机性能数值模拟

doi: 10.13224/j.cnki.jasp.20210670
基金项目: 国家自然科学基金(51706170); 中国博士后科学基金(2019TQ0246,2019M663734);陕西省自然科学基础研究计划基金(2020JQ-007); 中央高校基本科研业务费专项资金(xzy012019053,xjh012019033);陕西省自然科学基金面上项目(2022JM-231)
详细信息
    作者简介:

    杜鹏(1998-),男,硕士,研究领域为超声速燃烧与流动

    通讯作者:

    薛瑞(1987-),男,副教授,博士,研究领域为超声速燃烧与流动。E-mail:ruixue@xjtu.edu.cn

  • 中图分类号: V231

Numerical simulation of oblique detonation engine performance based on kerosene fuel

  • 摘要:

    针对马赫数为8以上高超声速飞行器的应用问题,采用11组分-10反应步的煤油/空气化学反应动力学模型,对不同来流及燃料喷注条件下的斜爆轰模型发动机进行数值研究,获得其对燃烧室内起爆驻定、爆轰波波面结构及推进性能的影响规律。研究结果表明:燃烧室入口马赫数为4.3时,超声速来流与壁面边界层作用加速了点火起爆过程,爆轰波在短时间内驻定。随着来流速度增大,爆轰波驻定位置更靠近燃烧室下游,爆轰波与边界层相互作用产生分离泡导致斜爆轰发动机推力显著降低。燃料当量比的变化直接影响爆轰波波面结构,减小当量比使得斜爆轰波稳定性降低,光滑的波面转变为“锯齿”状结构,具有该结构的爆轰波流场会显著降低发动机推进性能。

     

  • 图 1  高速射弹诱导爆轰波温度分布

    Figure 1.  Temperature contours of the detonation waves induced by a high-speed projectile

    图 2  沿y=0 mm热力学参数分布校验

    Figure 2.  Verification of thermodynamic parameter distribution along y=0 mm

    图 3  斜爆轰发动机构型尺寸(单位:mm)

    Figure 3.  Dimensions of oblique detonation engine model (unit:mm)

    图 4  计算区域网格

    Figure 4.  Computational grids of the configuration

    图 5  网格尺寸为0.25 mm和0.5 mm的网格无关性验证

    Figure 5.  Grid independence verification for grid sizes of 0.25 mm and 0.5 mm

    图 6  起动过程温度分布

    Figure 6.  Temperature contours of the start process

    图 7  起动过程数值纹影

    Figure 7.  Numerical schlieren contours of the start process

    图 8  不同来流马赫数下的温度分布

    Figure 8.  Temperature contours at different incoming Mach numbers

    图 9  不同来流马赫数下的数值纹影

    Figure 9.  Numerical schlieren contours at different incoming Mach numbers

    图 10  不同来流马赫数下的H2O质量分数分布

    Figure 10.  Mass fraction of H2O at different incoming Mach numbers

    图 11  沿y=5 mm温度和压强分布

    Figure 11.  Temperature and pressure distribution along y=5 mm

    图 12  不同燃料当量比下的温度分布

    Figure 12.  Temperature contours at different equivalence ratios

    图 13  不同燃料当量比下的数值纹影

    Figure 13.  Numerical schlieren contours at different equivalence ratios

    图 14  不同燃料当量比下的流线方向与爆轰波面角度对比

    Figure 14.  Comparison of angle between streamline direction and wave surfaces at different equivalence ratios

    表  1  煤油11组分10步化学反应机理

    Table  1.   Rate constants for 11 species 10-step chemical kinetics of kerosene

    反应式A/(1/s)BE/(J/kmol)
    ${ {\text{C} }_{ {\text{10} } } }{ {\text{H} }_{ {\text{22} } } } + { {\text{O} }_{\text{2} } } = = {\text{10CH} } + {\text{12H} } + { {\text{O} }_{\text{2} } }$1.00×101203.10×104
    ${\text{CH} } + { {\text{O} }_{\text{2} } }= = {\text{CO} } + {\text{OH} }$2.00×101503.00×103
    ${\text{CH} } + {\text{O} } = = {\text{CO} } + {\text{H} }$3.00×10121.000
    ${ {\text{H} }_{\text{2} } } + { {\text{O} }_{\text{2} } }= = { {\text{H} }_2}{\text{O} } + {\text{O} }$3.98×10111.004.80×104
    ${ {\text{H} }_2} + {\text{O} } = = {\text{H} } + {\text{OH} }$3.00×101406.00×103
    ${\text{H} } + { {\text{O} }_2} = = {\text{O} } + {\text{OH} }$4.00×101401.80×104
    ${ {\text{H} }_{\text{2} } }{\text{O} } + { {\text{O} }_{\text{2} } } = = 2{\text{O} } + { {\text{H} }_{\text{2} } }{\text{O} }$3.17×10122.001.12×105
    ${\text{CO} } + {\text{OH} } = = {\text{C} }{ {\text{O} }_{\text{2} } } + {\text{H} }$5.51×1071.27−7.58×102
    $ {\text{CO}} + {{\text{H}}_{\text{2}}}{\text{O}} = {\text{C}}{{\text{O}}_{\text{2}}} + {{\text{H}}_{\text{2}}} $5.50×1041.28−1.00×103
    ${\text{CO} } + { {\text{H} }_{\text{2} } } + { {\text{O} }_{\text{2} } } = = {\text{C} }{ {\text{O} }_{\text{2} } } + { {\text{H} }_{\text{2} } }{\text{O} }$1.60×10141.601.80×104
    下载: 导出CSV

    表  2  入口来流条件

    Table  2.   Inlet conditions

    Casep/kPaT/KMaφ
    15610214.31.35
    25610215.31.35
    35610216.31.35
    45610213.630.5
    55610213.630.6
    65610213.630.7
    下载: 导出CSV

    表  3  不同来流速度下发动机净推力对比

    Table  3.   Comparison of engine net thrust at different inflow velocities

    MaF0/NFμ /NFthrust/N
    4.37606.1−2954.44651.7
    5.36597.1−3213.43383.7
    6.36579.5−5384.31195.2
    下载: 导出CSV

    表  4  不同燃料当量比发动机比冲对比

    Table  4.   Specific impulse of engine at different equivalent ratios

    φFthrust/N$\dot m$/(kg/s)$ {I_{{\text{sp}}}} $/(N·s/kg)
    0.75247.741.9322716.2
    0.65163.841.6883059.1
    0.55103.511.3943661.1
    下载: 导出CSV
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  • 收稿日期:  2021-11-24
  • 网络出版日期:  2023-07-04

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