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宽域吻切乘波体参数敏感性分析与优化设计

袁熠祺 李永洲 杨学良 孙迪 罗喜胜 张堃元

袁熠祺, 李永洲, 杨学良, 等. 宽域吻切乘波体参数敏感性分析与优化设计[J]. 航空动力学报, 2026, 41(9):20240804 doi: 10.13224/j.cnki.jasp.20240804
引用本文: 袁熠祺, 李永洲, 杨学良, 等. 宽域吻切乘波体参数敏感性分析与优化设计[J]. 航空动力学报, 2026, 41(9):20240804 doi: 10.13224/j.cnki.jasp.20240804
Yuan Yiqi, Li Yongzhou, Yang Xueliang, et al. Sensitivity analysis of parameters and optimal design of wide range osculating cone waverider[J]. Journal of Aerospace Power, 2026, 41(9):20240804 doi: 10.13224/j.cnki.jasp.20240804
Citation: Yuan Yiqi, Li Yongzhou, Yang Xueliang, et al. Sensitivity analysis of parameters and optimal design of wide range osculating cone waverider[J]. Journal of Aerospace Power, 2026, 41(9):20240804 doi: 10.13224/j.cnki.jasp.20240804

宽域吻切乘波体参数敏感性分析与优化设计

doi: 10.13224/j.cnki.jasp.20240804
基金项目: 江西省双千计划创新领军人才项目(CK202206068);航空科学基金(20240012056001);国家重点实验室基金(6142701210102)
详细信息
    作者简介:

    袁熠祺(2000-),男,硕士,前体进气道一体化设计。E-mail:17879567200@163.com

    通讯作者:

    李永洲(1984-),男,教授,博士,高超声速推进技术。E-mail:nuaa-2004@126.com

  • 中图分类号: V221.3

Sensitivity analysis of parameters and optimal design of wide range osculating cone waverider

  • 摘要:

    为了提升吻切锥乘波体宽域性能,选取前缘曲线函数系数al、激波型线函数系数bc以及基准流场的半锥角δc共5个参数作为设计变量,在Ma=4~7范围内开展设计参数的敏感性分析,并采用第二代非支配排序遗传算法以容积率、设计点Ma=6和非设计点Ma=4升阻比为目标变量进行优化研究。结果表明:设计参数与总体性能参数之间存在显著的非线性关系,其中基准流场的半锥角对乘波体几何和气动性能起着决定性作用。相对基准构型,优化乘波体的容积率提升了7.1%,设计点Ma=6和非设计点Ma=4的升阻比分别提升了3.4%和10.7%。在宽马赫数范围内优化乘波体表现出较高的气动效率和较低总压损失,Ma=7时升阻比为4.88,即使前缘钝化后升阻比仍可保持在3.90。优化设计显著提升了乘波体设计点和非设计点的气动性能,具有良好的宽域适应性。

     

  • 图 1  吻切乘波体底面型线示意图

    Figure 1.  Curve of osculating cone waverider in the exit plane

    图 2  基准吻切锥乘波体轴测图

    Figure 2.  Axonometry of the reference osculating cone waverider

    图 3  不同网格数量下时对称面与下表面沿程静压分布Fig.3 Static pressure distribution of the symmetrical surface and the lower surface under different mesh sizes

    图 4  空天飞机模型三维视图

    Figure 4.  Three dimensional view of space plane model

    图 5  空天飞机表面及纵向对称面网格

    Figure 5.  Grids of the surface and longitudinal symmetry planes of aerospace plane

    图 6  0°攻角数值计算与实验纹影对比图

    Figure 6.  Comparison between numerical calculation and experimental schlieren of 0° angle of attack

    图 7  数值计算结果与风洞实验结果对比

    Figure 7.  Comparison between numerical calculation results and wind tunnel experimental data

    图 8  设计参数对容积率η影响图

    Figure 8.  Effect of design parameters on η

    图 9  设计点Ma=6设计参数对升阻比L/D影响图

    Figure 9.  Effect of design parameters on L/D at Ma=6

    图 10  非设计点Ma=4设计参数对升阻比L/D影响图

    Figure 10.  Effect of design parameters on L/D at Ma=4

    图 11  设计点Ma=6设计参数对俯仰力矩系数CM影响图

    Figure 11.  Effect of design parameters on CM at Ma=6

    图 12  设计点Ma=6时设计参数对总压恢复系数σ影响图

    Figure 12.  Effect of design parameters on σ at Ma=6

    图 13  三目标优化设计的 Pareto 前沿

    Figure 13.  Pareto front of the three objectives optimization

    图 14  多目标优化吻切锥乘波体构型

    Figure 14.  Multi-objective optimized osculating cone waverider

    图 15  不同来流马赫数时乘波体基准构型和优化构型的性能变化曲线

    Figure 15.  Performance variation curves between reference configuration and optimized configuration of waverider with different inflow Mach numbers

    图 16  钝化前后乘波体WR2的底面马赫数等值图

    Figure 16.  Contour of the bottom Mach number of the waverider WR2 before and after bluntness

    表  1  不同飞行马赫数下来流条件

    Table  1.   Incoming flow conditions at different flight Mach numbers

    Ma H/km T0/K p0/Pa ρ0/(kg/m3
    4 20 216.7 5529.3 8.9×10−2
    5 23 219.5 3466.9 5.5×10−2
    6 25 221.8 2549.2 4.0×10−2
    7 27 223.5 1880.0 2.9×10−2
    下载: 导出CSV

    表  2  乘波体基准设计参数

    Table  2.   Reference design parameters of waverider

    δclabc
    8.50.400.2750.45-0.59
    下载: 导出CSV

    表  3  不同网格尺寸计算结果

    Table  3.   Calculation results of different mesh size

    网格尺寸CLCDCM
    粗网格0.048450.0098990.03111
    中等网格0.048490.0098110.03118
    密网格0.048520.0098140.03120
    下载: 导出CSV

    表  4  风洞实验来流条件

    Table  4.   Wind tunnel experiment incoming flow conditions

    Ma Re T0/K p0/MPa α/(°)
    4.96 3.1×107 376 1.5 −5~25
    下载: 导出CSV

    表  5  设计参数取值区间

    Table  5.   Design parameters value range

    δc l a b c
    (7, 19) (0.4, 0.7) (0.2, 0.4) (0.4, 0.6) (−0.7, −0.5)
    下载: 导出CSV

    表  6  R2方法的设计参数误差

    Table  6.   Design parameter error of R2 method

    参数ηL/D6L/D4
    误差0.9750.9850.990
    下载: 导出CSV

    表  7  多目标优化的乘波体设计参数取值

    Table  7.   Design parameters values of multi-objective optimization waverider

    δc l a b c
    8.16 0.58 0.328 0.49 −0.58
    下载: 导出CSV

    表  8  不同来流马赫数时钝化前后乘波体性能参数

    Table  8.   Performance parameters of waverider before and after bluntness at different incoming Mach numbers

    Ma Rc/mm L/D CL CD CM σ
    4 0 5.90 0.059 0.010 0.037 0.97
    3 4.54 0.059 0.013 0.038 0.96
    5 0 5.47 0.052 0.0095 0.032 0.95
    3 4.33 0.052 0.012 0.033 0.94
    6 0 5.17 0.046 0.0089 0.029 0.92
    3 4.09 0.045 0.011 0.029 0.90
    7 0 4.88 0.041 0.0084 0.027 0.88
    3 3.90 0.039 0.010 0.026 0.86
    下载: 导出CSV
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