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基于代理模型和敏感度分析的直升机主减速器减振优化

许华超 朱豪杰 韩振华 王勇 秦大同

许华超, 朱豪杰, 韩振华, 等. 基于代理模型和敏感度分析的直升机主减速器减振优化[J]. 航空动力学报, 2024, 39(11):20220884 doi: 10.13224/j.cnki.jasp.20220884
引用本文: 许华超, 朱豪杰, 韩振华, 等. 基于代理模型和敏感度分析的直升机主减速器减振优化[J]. 航空动力学报, 2024, 39(11):20220884 doi: 10.13224/j.cnki.jasp.20220884
XU Huachao, ZHU Haojie, HAN Zhenhua, et al. Vibration reduction optimization for helicopter’s main gearbox based on surrogate model and sensitivity analysis[J]. Journal of Aerospace Power, 2024, 39(11):20220884 doi: 10.13224/j.cnki.jasp.20220884
Citation: XU Huachao, ZHU Haojie, HAN Zhenhua, et al. Vibration reduction optimization for helicopter’s main gearbox based on surrogate model and sensitivity analysis[J]. Journal of Aerospace Power, 2024, 39(11):20220884 doi: 10.13224/j.cnki.jasp.20220884

基于代理模型和敏感度分析的直升机主减速器减振优化

doi: 10.13224/j.cnki.jasp.20220884
基金项目: 国家自然科学基金(52005229); 重庆市教委科学技术研究项目(KJQN202203121,KJZD-K202203105);重庆电子工程职业学院校级科研项目(22XJZXYB14); 江苏省基础研究计划(BK20201055)
详细信息
    作者简介:

    许华超(1990-),男,讲师,博士,主要从事直升机主减速器动力学设计与分析方面的研究

    通讯作者:

    韩振华(1986-),男,讲师,博士,主要从事齿轮传动设计理论与方法方面的研究。E-mail:han_jsut@jsut.edu.cn

  • 中图分类号: V275;TH113

Vibration reduction optimization for helicopter’s main gearbox based on surrogate model and sensitivity analysis

  • 摘要:

    针对直升机主减速器减振优化存在计算量大、参数多等问题,提出了基于代理模型和全局敏感度分析的直升机主减速器减振优化方法。定义振动性能的评价指标,运用最优拉丁超立方抽样法均匀抽取样本数据,并依次带入直升机主减速器动力学模型求解评价指标样本;采用代理模型构建并替代计算耗时的主减速器动力学模型,以提高优化效率;随后开展参数敏感度分析,确定优化变量,并采用遗传算法在优化参数的取值范围内搜索出最优参数值。结果表明:代理模型能有效替代直升机主减速器动力学模型,啮合刚度是影响系统振动的重要参数,优化后主减速器各测点的振动加速度有效值最大与最小降幅分别为18.01%和4.28%。

     

  • 图 1  行星齿轮系统动力学模型

    Figure 1.  Dynamic model of planetary gear system

    图 2  斜齿轮动力学模型

    Figure 2.  Helical gear dynamic model

    图 3  螺旋锥齿轮啮合模型

    Figure 3.  Spiral bevel gear mesh model

    图 4  螺旋锥齿轮受力分析

    Figure 4.  Force analysis of spiral bevel gear

    图 5  传动轴有限元模型

    Figure 5.  Finite element model of transmission shaft

    图 6  考虑轴和机匣结构柔性的直升机主减速器动力学模型

    Figure 6.  Dynamic model of helicopter main gearbox considering flexibility of shaft and housing

    图 7  代理模型预测精度对比

    Figure 7.  Prediction accuracy comparison of surrogate models

    图 8  系统参数敏感度分析

    Figure 8.  Sensitivity analysis of system parameters

    图 9  不同负载下优化前后各测点的振动

    Figure 9.  Vibration of each measuring point before and after optimization under different loads

    表  1  模型参数的初值及取值范围

    Table  1.   Initial value and value range of model parameters 108 (N/m)

    模型参数 初值 取值范围
    高速级平均啮合刚度x1 5.7 [5.55, 5.87]
    中间级平均啮合刚度x2 4.8 [4.65, 4.94]
    低速级平均啮合刚度x3 3.7 [3.58, 3.81]
    行星级平均啮合刚度x4 9.5 [9.21, 9.78]
    行星轮轴承支撑刚度x5 0.034 [0.0329, 0.0350]
    齿圈与机匣间刚度x6 21 [19.4, 20.6]
    轴承1, 2的支撑刚度x7 0.15 [0.146, 0.155]
    轴承3, 4的径向刚度x8 5.1 [4.94, 5.25]
    轴承3, 4的轴向刚度x9 1.7 [1.64, 1.75]
    轴承5, 6的径向刚度x10 4.1 [3.97, 4.22]
    轴承5, 6的轴向刚度x11 3.4 [3.29, 3.50]
    轴承7, 8的径向刚度x12 5.5 [5.33, 5.66]
    轴承7, 8的轴向刚度x13 6.2 [6.01, 6.38]
    轴承9, 10的径向刚度x14 4.2 [4.07, 4.32]
    轴承9, 10的轴向刚度x15 2.0 [1.94, 2.06]
    下载: 导出CSV

    表  2  优化前后的模型参数

    Table  2.   Model parameters before and after optimization

    参数优化前/
    108 (N/m)
    优化后/
    108 (N/m)
    ζ/%
    x15.76.514.0
    x33.73.018.9
    x49.57.817.3
    x85.16.222.5
    x104.14.816.8
    x125.54.713.5
    下载: 导出CSV

    表  3  额定工况下系统优化前后各测点的振动响应

    Table  3.   Vibration response of each measuring point before and after system optimization under rated condition

    测点振动响应
    优化前/(m/s2优化后/(m/s2改善率/%
    1260.17217.3016.36
    296.1991.835.31
    3242.77212.7012.28
    4189.65169.7810.07
    5133.53122.807.92
    下载: 导出CSV
  • [1] 许华超,秦大同,刘长钊,等. 考虑结构柔性的多级齿轮箱变速过程动态特性研究[J]. 振动工程学报,2021,34(1): 99-107. XU Huachao,QIN Datong,LIU Changzhao,et al. Dynamic characteristics of the multi-stage gearbox considering structural flexibility during the variable speed process[J]. Journal of Vibration Engineering,2021,34(1): 99-107. (in Chinese

    XU Huachao, QIN Datong, LIU Changzhao, et al. Dynamic characteristics of the multi-stage gearbox considering structural flexibility during the variable speed process[J]. Journal of Vibration Engineering, 2021, 34(1): 99-107. (in Chinese)
    [2] 许华超,秦大同,刘长钊,等. 计入结构柔性的直升机主减速器振动特性分析[J]. 航空动力学报,2019,34(5): 1020-1028. XU Huachao,QIN Datong,LIU Changzhao,et al. Vibration characteristics analysis for helicopter main gearbox considering strutural flexibility[J]. Journal of Aerospace Power,2019,34(5): 1020-1028. (in Chinese

    XU Huachao, QIN Datong, LIU Changzhao, et al. Vibration characteristics analysis for helicopter main gearbox considering strutural flexibility[J]. Journal of Aerospace Power, 2019, 34(5): 1020-1028. (in Chinese)
    [3] 蒋函成,魏静,张爱强,等. 某直升机主减传动系统振动能量传递特性研究[J]. 振动与冲击,2021,40(7): 95-104,170. JIANG Hancheng,WEI Jing,ZHANG Aiqiang,et al. Vibration energy transfer characteristics of main reducer transmission system of a helicopter[J]. Journal of Vibration and Shock,2021,40(7): 95-104,170. (in Chinese

    JIANG Hancheng, WEI Jing, ZHANG Aiqiang, et al. Vibration energy transfer characteristics of main reducer transmission system of a helicopter[J]. Journal of Vibration and Shock, 2021, 40(7): 95-104, 170. (in Chinese)
    [4] 王英鹏,徐义华,孙海俊,等. 基于响应面法的火箭发动机喷管型面优化设计[J]. 航空动力学报,2022,37(1): 214-224. WANG Yingpeng,XU Yihua,SUN Haijun,et al. Optimization design for nozzle contour of rocket engine based on response surface method[J]. Journal of Aerospace Power,2022,37(1): 214-224. (in Chinese

    WANG Yingpeng, XU Yihua, SUN Haijun, et al. Optimization design for nozzle contour of rocket engine based on response surface method[J]. Journal of Aerospace Power, 2022, 37(1): 214-224. (in Chinese)
    [5] ZHOU Shengtao,LI Chao,XIAO Yiqing,et al. Importance of platform mounting orientation of Y-shaped semi-submersible floating wind turbines: a case study by using surrogate models[J]. Renewable Energy,2020,156: 260-278. doi: 10.1016/j.renene.2020.04.014
    [6] TAO Jun,SUN Gang,GUO Liqiang,et al. Application of a PCA-DBN-based surrogate model to robust aerodynamic design optimization[J]. Chinese Journal of Aeronautics,2020,33(6): 1573-1588. doi: 10.1016/j.cja.2020.01.015
    [7] 王文竹,李杰,刘刚,等. 基于Kriging代理模型鼓式制动器稳定性的优化设计[J]. 振动与冲击,2021,40(11): 134-138,162. WANG Wenzhu,LI Jie,LIU Gang,et al. Optimization design of drum brake stability based on Kriging surrogate model[J]. Journal of Vibration and Shock,2021,40(11): 134-138,162. (in Chinese

    WANG Wenzhu, LI Jie, LIU Gang, et al. Optimization design of drum brake stability based on Kriging surrogate model[J]. Journal of Vibration and Shock, 2021, 40(11): 134-138, 162. (in Chinese)
    [8] 杨丽丽,孔祥龙,李文龙,等. 基于高保真度代理模型的卫星结构优化[J]. 振动与冲击,2021,40(23): 208-215,222. YANG Lili,KONG Xianglong,LI Wenlong,et al. Satellite structure optimization based on high fidelity surrogate model[J]. Journal of Vibration and Shock,2021,40(23): 208-215,222. (in Chinese

    YANG Lili, KONG Xianglong, LI Wenlong, et al. Satellite structure optimization based on high fidelity surrogate model[J]. Journal of Vibration and Shock, 2021, 40(23): 208-215, 222. (in Chinese)
    [9] 尹泽勇,米栋,张立章,等. 航空动力系统整机多学科设计优化方法[J]. 航空动力学报,2022,37(10): 2025-2045. YIN Zeyong,MI Dong,ZHANG Lizhang,et al. Multidisciplinary design optimization method of overall aircraft power system[J]. Journal of Aerospace Power,2022,37(10): 2025-2045. (in Chinese

    YIN Zeyong, MI Dong, ZHANG Lizhang, et al. Multidisciplinary design optimization method of overall aircraft power system[J]. Journal of Aerospace Power, 2022, 37(10): 2025-2045. (in Chinese)
    [10] GUO Ning,YANG Zhichun,WANG Le,et al. Dynamic model updating based on strain mode shape and natural frequency using hybrid pattern search technique[J]. Journal of Sound Vibration,2018,422: 112-130. doi: 10.1016/j.jsv.2018.02.013
    [11] SHAO Qian,GAO Enlai,MARA T,et al. Global sensitivity analysis of solid oxide fuel cells with Bayesian sparse polynomial chaos expansions[J]. Applied Energy,2020,260: 114318. doi: 10.1016/j.apenergy.2019.114318
    [12] LIU Fuchao,WEI Pengfei,ZHOU Changcong,et al. Reliability and reliability sensitivity analysis of structure by combining adaptive linked importance sampling and Kriging reliability method[J]. Chinese Journal of Aeronautics,2020,33(4): 1218-1227. doi: 10.1016/j.cja.2019.12.032
    [13] 赵鸿华,宋双文,王志凯. 基于NSGA-Ⅱ算法的小弯管冲击冷却多目标优化[J]. 航空动力学报,2022,37(1): 1-12. ZHAO Honghua,SONG Shuangwen,WANG Zhikai. Multi-objective optimization of impingement cooling of concave wall based on NSGA-Ⅱ algorithm[J]. Journal of Aerospace Power,2022,37(1): 1-12. (in Chinese

    ZHAO Honghua, SONG Shuangwen, WANG Zhikai. Multi-objective optimization of impingement cooling of concave wall based on NSGA-Ⅱ algorithm[J]. Journal of Aerospace Power, 2022, 37(1): 1-12. (in Chinese)
    [14] XU Yanwu,ZHANG Zhuoran,YU Li,et al. Behavior and functional modeling methods of doubly salient electromagnetic generators for aircraft electrical power system applications[J]. Chinese Journal of Aeronautics,2019,32(2): 477-488. doi: 10.1016/j.cja.2018.12.028
    [15] Sobol I M. Sensitivity analysis for nonlinear mathematical models[J]. Mathematical Modeling and Computational Experiment,1993(1): 407-414.
    [16] GUO Jinghui,LIN Guiping,BU Xueqin,et al. Sensitivity analysis of flowfield modeling parameters upon the flow structure and aerodynamics of an opposing jet over a hypersonic blunt body[J]. Chinese Journal of Aeronautics,2020,33(1): 161-175. doi: 10.1016/j.cja.2019.08.025
    [17] KUBUR M,KAHRAMAN A,ZINI D M,et al. Dynamic analysis of a multi-shaft helical gear transmission by finite elements: model and experiment[J]. Journal of Vibration and Acoustics,2004,126(3): 398-406. doi: 10.1115/1.1760561
    [18] YI Yuanyuan,QIN Datong,LIU Changzhao. Investigation of electromechanical coupling vibration characteristics of an electric drive multistage gear system[J]. Mechanism and Machine Theory,2018,121: 446-459. doi: 10.1016/j.mechmachtheory.2017.11.011
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  • 收稿日期:  2022-11-19
  • 网络出版日期:  2024-05-07

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