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基于自适应遗传算法响应面优化模型的MDOE方法研究

程起有 李春华 江嘉伟 胡磊 陈卫星

程起有, 李春华, 江嘉伟, 等. 基于自适应遗传算法响应面优化模型的MDOE方法研究[J]. 航空动力学报, 2025, 40(12):20240844 doi: 10.13224/j.cnki.jasp.20240844
引用本文: 程起有, 李春华, 江嘉伟, 等. 基于自适应遗传算法响应面优化模型的MDOE方法研究[J]. 航空动力学报, 2025, 40(12):20240844 doi: 10.13224/j.cnki.jasp.20240844
CHENG Qiyou, LI Chunhua, JIANG Jiawei, et al. Research on MDOE methods based on response surface optimization model with adaptive genetic algorithm[J]. Journal of Aerospace Power, 2025, 40(12):20240844 doi: 10.13224/j.cnki.jasp.20240844
Citation: CHENG Qiyou, LI Chunhua, JIANG Jiawei, et al. Research on MDOE methods based on response surface optimization model with adaptive genetic algorithm[J]. Journal of Aerospace Power, 2025, 40(12):20240844 doi: 10.13224/j.cnki.jasp.20240844

基于自适应遗传算法响应面优化模型的MDOE方法研究

doi: 10.13224/j.cnki.jasp.20240844
基金项目: 直升机旋翼动力学国家重点实验室基金(61422202206)
详细信息
    作者简介:

    程起有(1980-),男,研究员,博士,主要从事直升机风洞试验技术研究。E-mail:chengqy@avic.com

    通讯作者:

    江嘉伟(1998-),男,工程师,硕士,主要从事直升机风洞试验气动特性研究。E-mail:jiangjw018@avic.com

  • 中图分类号: V211.52

Research on MDOE methods based on response surface optimization model with adaptive genetic algorithm

  • 摘要:

    多项式响应面模型(PRSM)具有建模简单、计算量较小的特点,在基于现代试验设计(MDOE)方法的风洞试验中得到广泛应用。然而,多项式响应面模型无法对模型拟合后的残差进行处理,会丢失部分模型矩阵信息而导致参数预测误差增加。因此,通过预测值和实测值的差值,构造模型残差目标函数,并根据轮盘赌计算个体适应度值,对遗传算法(GA)的交叉概率和变异概率进行改进,建立一种基于改进自适应遗传算法(IAGA)优化多项式响应面模型的MDOE方法,并应用于飞行器风洞试验。结果表明:MDOE方法仅需传统单变量(OFAT)方法35%左右的试验点,基于改进自适应遗传算法优化后的MDOE方法较基于传统遗传算法的MDOE方法,响应面模型预测误差降低了1.263%,平均迭代速度提高了3.76倍,有效提升风洞试验效率。

     

  • 图 1  OFAT方法风洞试验样本点分布

    Figure 1.  Distribution of sample points for wind tunnel experiments using the OFAT method

    图 2  MDOE方法风洞试验样本点分布

    Figure 2.  Distribution of sample points for wind tunnel experiment using the MDOE method

    图 3  整机风洞试验模型示意图

    Figure 3.  Schematic diagram of the full-scale wind tunnel experiment model

    图 4  开口直流式低速风洞

    Figure 4.  Open-jet low-speed wind tunnel

    图 5  天平测量结构图

    Figure 5.  Structural balance measurement diagram

    图 6  LXI采集器示意图

    Figure 6.  Diagram of LXI data acquisition unit

    图 7  MDOE方法气动系数响应面模型

    Figure 7.  Response surface model for aerodynamic coefficient based on MDOE method

    图 8  基于IAGA的参数优化流程图

    Figure 8.  Flowchart for parameter optimization based on IAGA

    图 9  基于GA优化的阻力系数极小值迭代收敛图

    Figure 9.  Iteration convergence diagram for minimizing drag coefficient based on GA optimization

    图 10  基于IAGA优化的阻力系数极小值迭代收敛图

    Figure 10.  Iteration convergence diagram for minimizing drag coefficient based on IAGA optimization

    图 11  基于GA优化的垂向力系数极小值迭代收敛图

    Figure 11.  Iteration convergence diagram for minimizing vertical force coefficient based on GA optimization

    图 12  基于IAGA优化的垂向力系数极小值迭代收敛图

    Figure 12.  Iteration convergence diagram for minimizing vertical force coefficient based on IAGA optimization

    图 13  基于GA优化的滚转力矩系数极小值迭代收敛图

    Figure 13.  Iteration convergence diagram for minimizing rolling moment coefficient based on GA optimization

    图 14  基于IAGA优化的滚转力矩系数极小值迭代收敛图

    Figure 14.  Iteration convergence diagram for minimizing rolling moment coefficient based on IAGA optimization

    图 15  基于GA优化的俯仰力矩系数极小值迭代收敛图

    Figure 15.  Iteration convergence diagram for minimizing pitching moment coefficient based on GA optimization

    图 16  基于IAGA优化的俯仰力矩系数极小值迭代收敛图

    Figure 16.  Iteration convergence diagram for minimizing pitching moment coefficient based on IAGA optimization

    图 17  基于IAGA优化后的MDOE方法气动系数响应面模型

    Figure 17.  Response surface model for aerodynamic coefficient based on MDOE method optimized by IAGA

    表  1  待定系数与模型形式关系表

    Table  1.   Relationships between undetermined coefficients and model forms

    多项式响应面模型形式待定系数个数
    一元二次多项式3
    二元三次多项式10
    三元四次多项式35
    四元五次多项式126
    下载: 导出CSV

    表  2  OFAT方法所取的自变量及试验值

    Table  2.   Variables and experiment values by OFAT method

    自变量 试验值
    风速V/(m/s) 5,8,10,12,15,20,25
    迎角α/(°) −6,−4,−2,0,2,4,6
    下载: 导出CSV

    表  3  阻力系数响应面模型插值数据对比

    Table  3.   Comparison of interpolation data for drag coefficient response surface model

    序号 迎角/(°) 风速/(m/s) OFAT方法
    阻力系数
    GA-MDOE方法 IAGA-MDOE方法
    阻力系数 相对误差/% 阻力系数 相对误差/%
    1 −6 5 0.09298 0.09468 1.828 0.09361 0.678
    2 −6 25 1.35134 1.37615 1.836 1.36049 0.677
    3 −2 5 0.08756 0.08918 1.850 0.08816 0.685
    4 2 8 0.16701 0.17007 1.832 0.16814 0.677
    5 4 18 0.63941 0.65111 1.830 0.64372 0.674
    6 6 12 0.27897 0.28409 1.835 0.28086 0.677
    7 6 25 −1.127 1.14765 1.836 1.13459 0.677
    下载: 导出CSV

    表  4  垂向力系数响应面模型插值数据对比

    Table  4.   Comparison of interpolation data for vertical force coefficient response surface model

    序号 迎角/(°) 风速/(m/s) OFAT方法
    垂向力系数
    GA-MDOE方法 IAGA-MDOE方法
    垂向力系数 相对误差/% 垂向力系数 相对误差/%
    1 −6 5 0.05699 0.058 1.772 0.0574 0.719
    2 −6 25 1.1805 1.20088 1.726 1.18797 0.633
    3 −2 5 0.05553 0.0565 1.747 0.05585 0.576
    4 2 8 0.25867 0.26311 1.716 0.26031 0.634
    5 4 18 1.51499 1.54103 1.719 1.52453 0.630
    6 6 12 0.70202 0.71413 1.725 0.70643 0.628
    7 6 25 3.23964 3.29514 1.713 3.25988 0.625
    下载: 导出CSV

    表  5  滚转力矩系数响应面模型插值数据对比

    Table  5.   Comparison of interpolation data for rolling moment coefficient response surface model

    序号 迎角/(°) 风速/(m/s) OFAT方法
    滚转力矩系数
    GA-MDOE方法 IAGA-MDOE方法
    滚转力矩系数 相对误差/% 滚转力矩系数 相对误差/%
    1 −6 5 0.05267 0.05349 1.557 0.05304 0.702
    2 −6 25 0.0199 0.02021 1.558 0.02004 0.704
    3 −2 5 0.00846 0.0086 1.655 0.00852 0.709
    4 2 8 0.00635 0.00645 1.575 0.0064 0.787
    5 4 18 0.0408 0.04144 1.569 0.04109 0.711
    6 6 12 0.08562 0.08694 1.542 0.08622 0.701
    7 6 25 0.01384 0.01405 1.517 0.01394 0.723
    下载: 导出CSV

    表  6  俯仰力矩系数响应面模型插值数据对比

    Table  6.   Comparison of interpolation data for pitching moment coefficient response surface model

    序号 迎角/(°) 风速/(m/s) OFAT方法
    俯仰力矩系数
    GA-MDOE方法 IAGA-MDOE方法
    俯仰力矩系数 相对误差/% 俯仰力矩系数 相对误差/%
    1 −6 5 0.0066 0.00672 1.818 0.00665 0.758
    2 −6 25 0.30989 0.31538 1.772 0.31184 0.629
    3 −2 5 0.00836 0.00851 1.794 0.00841 0.598
    4 2 8 0.00539 0.00548 1.670 0.00542 0.557
    5 4 18 0.05038 0.05128 1.786 0.0507 0.635
    6 6 12 0.00396 0.00403 1.768 0.00398 0.505
    7 6 25 0.01989 0.02025 1.810 0.02002 0.654
    下载: 导出CSV
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  • 收稿日期:  2024-12-18
  • 网络出版日期:  2025-05-19

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