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喷注位置对RBCC释热特性及发动机性能的影响

于洋 方哲 范健 裴金亮 李宇飞

于洋, 方哲, 范健, 等. 喷注位置对RBCC释热特性及发动机性能的影响[J]. 航空动力学报, 2026, 41(X):20250571 doi: 10.13224/j.cnki.jasp.20250571
引用本文: 于洋, 方哲, 范健, 等. 喷注位置对RBCC释热特性及发动机性能的影响[J]. 航空动力学报, 2026, 41(X):20250571 doi: 10.13224/j.cnki.jasp.20250571
Yu Yang, Fang Zhe, Fan Jian, et al. Influence of injection position on heat release characteristics and engine performance of the RBCC[J]. Journal of Aerospace Power, 2026, 41(X):20250571 doi: 10.13224/j.cnki.jasp.20250571
Citation: Yu Yang, Fang Zhe, Fan Jian, et al. Influence of injection position on heat release characteristics and engine performance of the RBCC[J]. Journal of Aerospace Power, 2026, 41(X):20250571 doi: 10.13224/j.cnki.jasp.20250571

喷注位置对RBCC释热特性及发动机性能的影响

doi: 10.13224/j.cnki.jasp.20250571
详细信息
    作者简介:

    于洋(1998-),男,博士生,主要研究方向为组合动力技术。E-mail:yyzy1998@buaa.edu.cn

    通讯作者:

    范健(1983-),男,研究员,博士,主要研究方向为动力系统总体设计。E-mail:fanjian0116@163.com

  • 中图分类号: V438

Influence of injection position on heat release characteristics and engine performance of the RBCC

  • 摘要:

    针对来流马赫数为6条件下的RBCC发动机释热特性开展数值模拟研究,结合对数化处理与滤波函数等手段,对比分析了喷注位置对流动特征、释热分布、燃烧模式及发动机性能的影响。研究表明,喷注位置前移会使激波串起点向上游移动,流道高压区分布随之扩大,整体压力水平显著提高;同时,可增大燃烧反应区体积,提高总释热量,并使集中释热区向上游移动;此外,喷注前移通过减小释热对应的流道面积来提高释热峰值,但燃料支板诱导的激波因其减速增压效应对局部释热增强更为显著。研究还发现,各喷注位置工况均以扩散燃烧与亚声速燃烧模式占优,而隔离段凹腔上游喷注可提高预混燃烧比例,中心支板侧壁喷注更有利于提高超声速燃烧比例。在研究范围内,前移喷注可有效提升燃烧效率、推力及比冲,于隔离段凹腔上游进行喷注可获得最优发动机性能。

     

  • 图 1  RBCC发动机构型图

    Figure 1.  Configuration of RBCC engine

    图 2  壁面压力的试验与数值模拟结果对比

    Figure 2.  Comparison of experimental and numerical results for wall pressure

    图 3  网格无关性验证

    Figure 3.  Grid independence analysis

    图 4  不同喷注位置下对数化密度梯度云图(左)和马赫数云图(右)

    Figure 4.  Logarithmic density gradient contours (left) and Mach number contours (right) with different injection positions

    图 5  不同喷注位置下平均归一化压力轴向分布

    Figure 5.  Axial distribution of average normalized pressure with different injection positions

    图 6  不同喷注位置下平均马赫数轴向分布

    Figure 6.  Axial distribution of average Mach number with different injection positions

    图 7  不同喷注位置下对数化释热率云图

    Figure 7.  Logarithmic heat release rate contours with different injection positions

    图 8  不同喷注位置下释热通量轴向分布

    Figure 8.  Axial distribution of heat release flux with different injection positions

    图 9  不同喷注位置下扩散燃烧释热通量轴向分布

    Figure 9.  Axial distribution of diffusion combustion heat release flux with different injection positions

    图 10  不同喷注位置下预混燃烧释热通量轴向分布

    Figure 10.  Axial distribution of premixed combustion heat release flux with different injection positions

    图 11  不同喷注位置下亚声速燃烧释热通量轴向分布

    Figure 11.  Axial distribution of subsonic combustion heat release flux with different injection positions

    图 12  不同喷注位置下超声速燃烧释热通量轴向分布

    Figure 12.  Axial distribution of supersonic combustion heat release flux with different injection positions

    表  1  来流入口参数

    Table  1.   Inflow parameters

    马赫数空气流率/(kg/s)总温/K总压/MPa
    2.62.5016601.37
    下载: 导出CSV

    表  2  不同工况的燃料喷注位置

    Table  2.   Fuel injection positions for different cases

    工况当量比喷注位置
    Case 11.0A:隔离段凹腔上游10 mm
    Case 21.0B:中心支板末端上游15 mm
    Case 31.0C:燃料支板前缘侧壁中心处
    下载: 导出CSV

    表  3  煤油三步简化动力学

    Table  3.   Three-step reduced chemical kinetics for kerosene

    反应 A/
    (cm3/(mol·s))
    Ea/
    (J/(kmol))
    β
    C10H16+5O2=10CO+8H2 2.35×104 1.633×108 1
    2CO+O2=2CO2 3.48×108 8.42×107 2
    2H2+O2=2H2O 3.0×1017 0 −1
    下载: 导出CSV

    表  4  不同喷注位置下燃烧反应区体积与总释热量

    Table  4.   Volume of reaction zone and total heat release with different injection positions

    工况Vreact /m3Qtotal /W
    Case 15.86e-026.74e+06
    Case 25.38e-025.89e+06
    Case 34.39e-025.76e+06
    下载: 导出CSV

    表  5  不同喷注位置下扩散燃烧与预混燃烧模式占比

    Table  5.   Proportion of diffusion and premixed combustion modes with different injection positions

    工况ξd/%ξp/%ηd/%ηp/%
    Case 186.913.177.722.3
    Case 293.66.483.017.0
    Case 393.96.181.318.7
    下载: 导出CSV

    表  6  不同喷注位置下亚声速燃烧与超声速燃烧模式占比

    Table  6.   Proportion of subsonic and supersonic combustion modes with different injection positions

    工况ξsub/%ξsup/%ηsub/%ηsup/%
    Case 131.168.981.718.3
    Case 224.275.855.144.9
    Case 321.079.067.932.1
    下载: 导出CSV

    表  7  不同喷注位置下发动机性能

    Table  7.   Engine performance with different injection positions

    工况 ηc/% TInlet /N TIsolator /N TCombustor /N TNozzle /N TEngine /N Isp /s
    Case 1 91.6 −447.1 320.3 946.9 684.8 1505.1 900.3
    Case 2 80.1 −447.1 −93.6 1089.0 702.3 1250.7 748.1
    Case 3 78.3 −447.1 −164.4 1010.2 759.3 1158.0 692.6
    下载: 导出CSV
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