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加力燃烧室上游喷射式稳定器燃烧效率预测模型

赵昶 刘玉英 刘广海 乔程雨

赵昶, 刘玉英, 刘广海, 等. 加力燃烧室上游喷射式稳定器燃烧效率预测模型[J]. 航空动力学报, 2025, 40(7):20240588 doi: 10.13224/j.cnki.jasp.20240588
引用本文: 赵昶, 刘玉英, 刘广海, 等. 加力燃烧室上游喷射式稳定器燃烧效率预测模型[J]. 航空动力学报, 2025, 40(7):20240588 doi: 10.13224/j.cnki.jasp.20240588
ZHAO Chang, LIU Yuying, LIU Guanghai, et al. Combustion efficiency prediction model of upstream-injection flame stabilizer in afterburner[J]. Journal of Aerospace Power, 2025, 40(7):20240588 doi: 10.13224/j.cnki.jasp.20240588
Citation: ZHAO Chang, LIU Yuying, LIU Guanghai, et al. Combustion efficiency prediction model of upstream-injection flame stabilizer in afterburner[J]. Journal of Aerospace Power, 2025, 40(7):20240588 doi: 10.13224/j.cnki.jasp.20240588

加力燃烧室上游喷射式稳定器燃烧效率预测模型

doi: 10.13224/j.cnki.jasp.20240588
基金项目: 国家科技重大专项(J2019-Ⅲ-0016-0060)
详细信息
    作者简介:

    赵昶(1999-),男,硕士生,主要从事航空发动机燃烧研究

    通讯作者:

    刘玉英(1974-),女,教授,博士,主要从事发动机燃烧研究。E-mail:yyliu@buaa.edu.cn

  • 中图分类号: V231.2

Combustion efficiency prediction model of upstream-injection flame stabilizer in afterburner

  • 摘要:

    火焰稳定器下游不同位置的燃烧效率预测是加力燃烧室长度设计中的重要问题。在来流温度600~900 K、来流速度75~170 m/s和当量比0.22~1.20的条件下,以上游喷射式U型钝体火焰稳定器为研究对象,采用数值模拟研究与理论分析相结合的方法,确定了适用于加力燃烧室的湍流火焰速度预测模型与湍流强度半经验预测公式,提出了基于化学反应速率控制的加力燃烧室上游喷射式钝体火焰稳定器的沿程燃烧效率预测模型,并对预测模型进行了验证。结果表明:与数值模拟结果相比,该模型对火焰稳定器下游不同位置处的燃烧效率预测误差,在不同来流温度和速度下不超过2.5%,不同当量比下不超过20%。

     

  • 图 1  几何模型及计算域示意图(单位:mm)

    Figure 1.  Sketch of geometric model and computational domain (unit:mm)

    图 2  网格无关化验证

    Figure 2.  Grid independence verification

    图 3  实验火焰照片及仿真OH质量分数云图

    Figure 3.  Test flame photo and simulated OH mass fraction cloud image

    图 4  计算方法验证

    Figure 4.  Calculation method verification

    图 5  稳定器下游火焰扩张示意图

    Figure 5.  Schematic diagram of downstream flame expansion of the flame stabilizer

    图 6  湍流火焰速度预测模型结果

    Figure 6.  Results of turbulent flame velocity prediction model

    图 7  不同来流温度下预测模型精度结果

    Figure 7.  Prediction model accuracy results under different incoming temperatures

    图 8  不同来流速度下预测模型精度结果

    Figure 8.  Prediction model accuracy results under different incoming velocities

    图 9  不同当量比下预测模型精度结果

    Figure 9.  Prediction model accuracy results under different equivalent ratios

    表  1  湍流火焰速度预测模型

    Table  1.   Prediction model of turbulent flame velocity

    文献 模型 适用范围
    [15] $\begin{gathered} \frac{{S}_{\rm{t}}}{{S}_{{\mathrm{l}}}^{0}}=={A}_{0}\mathrm{e}\mathrm{x}\mathrm{p}\left\{\left[\left(1.742+0.182{S}_{{\mathrm{l}}}^{0}{A}_{0}^{2}\right)+\frac{1}{2}\mathrm{ln}\left(\frac{{l}_{{\mathrm{t}}}}{{\delta }_{{\mathrm{l}}}^{0}}\right)\right]\times\right.\\\left.\left[1-\mathrm{exp}\left(-\dfrac{\dfrac{\left(1-{{\rho }_{{\mathrm{b}}}}/{{\rho }_{{\mathrm{u}}}}\right){A}_{0}\left(K=1\right)}{Le}R{e}^{-\tfrac{1}{4}}{\left({{l}_{{\mathrm{t}}}}/{{\delta }_{{\mathrm{l}}}^{0}}\right)}^{\tfrac{1}{2}}}{\left(1.742+0.182{S}_{{\mathrm{l}}}^{0}{A}_{0}^{2}\right){A}_{0}}\times \dfrac{{u}'}{{S}_{{\mathrm{l}}}^{0}}\right)\right]\right\} \end{gathered}$ 适用于平面火焰和本生灯火焰等
    [16] $ \dfrac{{S}_{\rm{t}}}{{S}_{{\mathrm{l}}}^{0}}=6.4{\left(\dfrac{{u}'}{{S}_{{\mathrm{l}}}^{0}}\right)}^{\tfrac{1}{4}} $ 适用于$ \eta < 0.6{l}_{{\mathrm{f}}} $且$ Re\leqslant 3\;200 $或者$ \eta < 1.5{l}_{{\mathrm{f}}} $且$ Re > 3\;200 $
    [17] $ \dfrac{{S}_{\rm{t}}}{{S}_{{\mathrm{l}}}^{0}}=0.52{\left(Pr\dfrac{{S}_{{\mathrm{l}}}^{0}{l}_{{\mathrm{t}}}}{{u}'{l}_{{\mathrm{f}}}}\right)}^{\tfrac{1}{4}}\dfrac{{u}'}{{S}_{{\mathrm{l}}}^{0}} $ 结合小尺度湍流对增强标量混合的影响和
    大尺度湍流对火焰表面起皱的影响
    [18] $ \dfrac{{S}_{\rm{t}}}{{S}_{{\mathrm{l}}}}=\left\{0.5\left[1+\left(1+8\dfrac{{u}^{'2}}{{S}_{{\mathrm{l}}}^{2}}\right)^{0.5}\right]\right\}^{0.5} $ 适用于弱强度湍流燃烧
    [19] $ \dfrac{{S}_{\rm{t}}}{{S}_{{\mathrm{l}}}^{0}}=1+0.195\dfrac{{l}_{{\mathrm{t}}}}{{l}_{{\mathrm{f}}}}\left(\sqrt{1+20.5\dfrac{{u}'{l}_{{\mathrm{f}}}}{{S}_{{\mathrm{l}}}^{0}{l}_{{\mathrm{t}}}}}-1\right) $ 适用于大尺度湍流燃烧和小尺度湍流燃烧
    注:$ {S}_{{\mathrm{l}}}^{0} $为无应变一维层流火焰的层流火焰速度,$ {\delta }_{{\mathrm{l}}}^{0} $为无应变一维层流火焰的层流火焰厚度,$ {S}_{{\mathrm{l}}} $为层流火焰速度,$ {A}_{0} $为拉伸因子,$ {l}_{{\mathrm{t}}} $为湍流积分尺度,$ {\rho }_{{\mathrm{b}}} $和$ {\rho }_{{\mathrm{u}}} $分别为已燃气体和未燃气体的密度,$ Le $、$ Pr $和$ Re $分别为湍流刘易斯数、普朗特数和雷诺数,K为传递系数,$u' $为湍流脉动速度,$ {l}_{{\mathrm{f}}} $为扩散火焰厚度,$ \eta $为科尔莫戈罗夫长度尺度。
    下载: 导出CSV

    表  2  湍流火焰速度$ {{\boldsymbol{S}}}_{\bf{t}} $实验结果[14]

    Table  2.   Test results of the turbulence flame velocity $ {{\boldsymbol{S}}}_{\bf{t}} $[14]

    T/K p/Pa V/(m/s) $ {S}_{\rm{t}}/ (\mathrm{m}/\mathrm{s}) $
    573 101325 50 12.06
    573 101325 75 15.07
    573 101325 100 16.50
    下载: 导出CSV

    表  3  数值模拟工况及湍流强度结果

    Table  3.   Numerical simulation conditions and turbulence intensity results

    工况 $ T/\mathrm{K} $ $ V/ (\mathrm{m}/\mathrm{s}) $ $ \phi $ $ I $/% C
    1 600 75 0.61 5.70 0.188 0
    2 700 75 0.61 7.00 0.228 5
    3 800 75 0.61 8.30 0.268 5
    4 900 75 0.61 9.60 0.308 0
    5 900 100 0.61 8.80 0.292 5
    6 900 125 0.61 8.00 0.273 5
    7 900 150 0.61 7.38 0.258 0
    8 900 75 0.22 30.00 1.058 5
    9 900 75 0.347 13.56 0.460 5
    10 900 75 0.844 8.14 0.253 0
    11 900 75 1.0 6.31 0.193 7
    12 900 75 1.2 4.01 0.122 5
    下载: 导出CSV

    表  4  数值模拟工况

    Table  4.   Numerical simulation conditions

    工况 $ T/{\mathrm{K}} $ $ V/ (\mathrm{m}/\mathrm{s}) $ $ \phi $
    13 650 90 0.5
    14 750 90 0.5
    15 850 90 0.5
    16 850 130 0.5
    17 850 170 0.5
    18 850 90 0.3
    19 850 90 0.8
    20 850 90 1.1
    下载: 导出CSV
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  • 收稿日期:  2024-08-22
  • 网络出版日期:  2025-04-03

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