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转子弹性支承螺栓松动致干摩擦故障分析

黄行蓉 杨东来 肖凯文 姚毅

黄行蓉, 杨东来, 肖凯文, 等. 转子弹性支承螺栓松动致干摩擦故障分析[J]. 航空动力学报, 2023, 38(7):1723-1733 doi: 10.13224/j.cnki.jasp.20210299
引用本文: 黄行蓉, 杨东来, 肖凯文, 等. 转子弹性支承螺栓松动致干摩擦故障分析[J]. 航空动力学报, 2023, 38(7):1723-1733 doi: 10.13224/j.cnki.jasp.20210299
HUANG Xingrong, YANG Donglai, XIAO Kaiwen, et al. Analysis of dry friction fault caused by rotor elastic support bolt looseness[J]. Journal of Aerospace Power, 2023, 38(7):1723-1733 doi: 10.13224/j.cnki.jasp.20210299
Citation: HUANG Xingrong, YANG Donglai, XIAO Kaiwen, et al. Analysis of dry friction fault caused by rotor elastic support bolt looseness[J]. Journal of Aerospace Power, 2023, 38(7):1723-1733 doi: 10.13224/j.cnki.jasp.20210299

转子弹性支承螺栓松动致干摩擦故障分析

doi: 10.13224/j.cnki.jasp.20210299
基金项目: 国家自然科学基金(52105083,52175071); 两机基础科学研究中心国际合作项目(P2022-C-Ⅲ-001-001);先进航空动力创新工作站(HKCX2020-02-016)
详细信息
    作者简介:

    黄行蓉(1989-),女,副教授,博士,研究方向为非线性动力学、流固耦合动力学及振动控制

    通讯作者:

    姚毅(1999-),男,硕士生,研究方向为转子动力学、模态综合法及非线性动力学。E-mail:yy17241048@buaa.edu.cn

  • 中图分类号: V231.92

Analysis of dry friction fault caused by rotor elastic support bolt looseness

  • 摘要:

    根据工程实际中某核心机转子振动异常现象和试验件结构检测结果,建立了前支点鼠笼弹支松动的故障转子简化力学模型。基于转子动力学理论和试验信号中谐波特征,建立了前支点鼠笼支承结构由于螺栓连接松动致干摩擦简化模型,重点分析了干摩擦非线性对转子系统的轴心轨迹、弹支位移和支点反力等动力学响应特征的影响,从简入繁分析了如下3种转子的动力学特性:无故障的线性转子系统;考虑螺栓松动致非线性力、不考虑陀螺效应的非线性系统;考虑螺栓松动致非线性力和陀螺效应的非线性转子系统。研究发现:在转子系统中考虑干摩擦非线性力后,系统响应特征中会出现丰富的谐波成分;螺栓松动故障转子系统简化力学建模时,是否考虑陀螺效应对谐波特征也有较为明显的影响。该研究能为该类故障转子系统的监测和诊断提供参考。

     

  • 图 1  某核心机转子系统示意图

    Figure 1.  Diagram of the rotor of core engine

    图 2  摩擦力与位移和速度的关系曲线

    Figure 2.  Curve of friction vs. displacement and velocity

    图 3  转子系统坎贝尔图

    Figure 3.  Campbell diagram of rotor system

    图 4  考虑陀螺效应但不考虑干摩擦非线性力时质心和前支点沿z方向的强迫响应

    Figure 4.  Forced response in z direction of centroid and front fulcrum with gyroscopic effect without dry friction nonlinear force

    图 5  考虑陀螺效应的转子系统质心轨迹

    Figure 5.  Trajectory of centroid of rotor system with gyroscopic effect

    图 6  质心沿z方向稳态响应频谱特征曲线

    Figure 6.  Steady-state spectrum curve of centroid in z direction

    图 7  不考虑陀螺效应但考虑干摩擦非线性力时质心和前支点沿z方向的强迫响应

    Figure 7.  Forced response in z direction of centroid and front fulcrum with dry friction force without gyroscopic effect

    图 8  质心沿z方向稳态频谱特征曲线

    Figure 8.  Steady-state spectrum curve of centroid in z direction

    图 9  质心z方向稳态响应傅里叶幅值最高3阶频率响应对比

    Figure 9.  Comparison of Fourier coefficient of steady-state forced response of centroid with three highest order harmonic in z direction

    图 10  前支点z方向稳态频谱特征曲线

    Figure 10.  Steady-state spectrum curve of front fulcrum in z direction

    图 11  支点反力时域曲线

    Figure 11.  Time domain curve of force on front fulcrum

    图 12  稳态支点反力频谱特征曲线

    Figure 12.  Steady-state spectrum curve of force on front fulcrum

    图 13  质心和前支点支承沿z方向的强迫响应

    Figure 13.  Forced response of centroid and front fulcrum in z direction

    图 14  质心稳态频谱特征曲线

    Figure 14.  Steady-state spectrum curve of centroid

    图 15  质心稳态响应傅里叶幅值最高3阶频率响应对比

    Figure 15.  Comparison of Fourier coefficient of steady-state forced Response of centroid with three highest order harmonic

    图 16  前支点频谱特征曲线

    Figure 16.  Steady-state spectrum curve of front fulcrum

    图 17  质心轨迹时域曲线

    Figure 17.  Trajectory of centroid in time domain

    图 18  前支点反力的时域曲线

    Figure 18.  Time domain curve of reaction force on front fulcrum

    图 19  稳态支反力频谱特征曲线

    Figure 19.  Steady-state spectrum curve of force on front fulcrum

    表  1  核心机转子的主要参数表

    Table  1.   Main parameters of the rotor of core engine

    参数数值
    前后支点跨距/mm1398
    转子总质量/kg336
    质心位置/mm距前支点857
    直径转动惯量/108 (kg·mm27.07
    极转动惯量/106 (kg·mm28.256
    前支点支承刚度/107 (N/m)2.25
    后支点支承刚度/107 (N/m)5
    前支点阻尼/(N·s/mm)60
    后支点阻尼/(N·s/mm)10
    下载: 导出CSV
  • [1] 《航空发动机手册》总编委会. 航空发动机设计手册: 第19册 转子动力学及整机振动[M]. 北京: 中国航空工业出版社, 2000.
    [2] 韩清凯, 于涛, 王德友, 等. 故障转子系统的非线性振动分析与诊断方法[M]. 北京: 科学出版社, 2010
    [3] 罗跃纲. 转子系统故障的若干非线性动力学问题及智能诊断研究[D]. 沈阳: 东北大学, 2002.

    LUO Yuegang. Study on some nonlinear dynamics problems of rotor system with faults and intelligent diagnosis method[D]. Shenyang: Northeastern University, 2002. (in Chinese)
    [4] SHANG Zhiyong,JIANG Jun,HONG Lin. The global responses characteristics of a rotor/stator rubbing system with dry friction effects[J]. Journal of Sound and Vibration,2011,330(10): 2150-2160. doi: 10.1016/j.jsv.2010.06.004
    [5] JIANG Mian,WU Jigang,PENG Xinsheng,et al. Nonlinearity measure-based assessment method for pedestal looseness of bearing-rotor systems[J]. Journal of Sound and Vibration,2017,411: 232-246. doi: 10.1016/j.jsv.2017.09.002
    [6] CHOUKSEY M,DUTT J K,MODAK S V. Modal analysis of rotor-shaft system under the influence of rotor-shaft material damping and fluid film forces[J]. Mechanism & Machine Theory,2012,48: 81-93.
    [7] WEI Songhan,LU Wenxiu,CHU Fulei. Speed characteristics of disk-shaft system with rotating part looseness[J]. Journal of Sound and Vibration,2019,469: 115-127.
    [8] JIN Yulin,LIU Zhiwen,YANG Yang,et al. Nonlinear vibrations of a dual-rotor-bearing-coupling misalignment system with blade-casing rubbing[J]. Journal of Sound and Vibration,2021,497(6): 115948.1-115948.19.
    [9] 张大义,母国新,洪杰. 航空发动机转子支承系统刚度计算中的几个问题[J]. 战术导弹技术,2005(2): 20-23. doi: 10.3969/j.issn.1009-1300.2005.02.004

    ZHANG Dayi,MU Guoxin,HONG Jie. Rigidity calculation methods for rotor supporting system in gas engine[J]. Tactical Missile Technology,2005(2): 20-23. (in Chinese) doi: 10.3969/j.issn.1009-1300.2005.02.004
    [10] MA Hui, SUN Wei, DAI Jishuang, et al. Fault feature analysis of rotor system with looseness fault[C]//Proceedings of the ASME 2009 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. Volume 1: 22nd Biennial Conference on Mechanical Vibration and Noise, Parts A and B. San Diego, California, US: ASME, 2009: 1073-1077.
    [11] 姚红良,刘长利,张晓伟,等. 支承松动故障转子系统共振区动态特性分析[J]. 东北大学学报(自然科学版),2003,24(8): 798-801. doi: 10.3321/j.issn:1005-3026.2003.08.023

    YAO Hongliang,LIU Changli,ZHANG Xiaowei,et al. Dynamics of pedestal looseness rotor system near the critical speed region[J]. Journal of Northeastern University (Natural Science),2003,24(8): 798-801. (in Chinese) doi: 10.3321/j.issn:1005-3026.2003.08.023
    [12] 王海飞,陈果,廖仲坤,等. 含支承松动故障的航空发动机非同步响应特征[J]. 振动、测试与诊断,2016,36(5): 858-864. doi: 10.16450/j.cnki.issn.1004-6801.2016.05.007

    WANG Haifei,CHEN Guo,LIAO Zhongkun,et al. Asynchronous response characteristics of aeroengine with support looseness fault[J]. Journal of Vibration, Measurement & Diagnosis,2016,36(5): 858-864. (in Chinese) doi: 10.16450/j.cnki.issn.1004-6801.2016.05.007
    [13] YANG Yang,YANG Yiren,CAO Dengqing,et al. Response evaluation of imbalance-rub-pedestal looseness coupling fault on a geometrically nonlinear rotor system[J]. Mechanical Systems and Signal Processing,2018,118: 423-442.
    [14] 李振平,罗跃纲,姚红良,等. 转子系统支承松动的非线性动力学及故障特征[J]. 东北大学学报,2002,23(11): 1048-1051.

    LI Zhenping,LUO Yuegang,YAO Hongliang,et al. Nonlinear dynamics and fault characteristics of rotor system with support looseness[J]. Journal of Northeastern University,2002,23(11): 1048-1051. (in Chinese)
    [15] 丁一. 含挤压油膜阻尼器支承转子特性分析和减振机理探究[D]. 南京: 南京航空航天大学, 2018.

    DING Yi. Analysis of rotor characteristics with squeeze film damper bearing and research on the damping mechanism[D]. Nanjing: Nanjing University of Aeronatics and Astronautics, 2018. (in Chinese)
    [16] MA Hui,SHI Chaoyang,HAN Qingkai,et al. Fixed-point rubbing fault characteristic analysis of a rotor system based on contact theory[J]. Mechanical Systems and Signal Processing,2013,38(1): 137-153. doi: 10.1016/j.ymssp.2012.10.009
    [17] HONG Jie,YU Pingchao,ZHANG Dayi,et al. Nonlinear dynamic analysis using the complex nonlinear modes for a rotor system with an additional constraint due to rub-impact[J]. Mechanical Systems and Signal Processing,2019,116: 443-461. doi: 10.1016/j.ymssp.2018.06.061
    [18] 刘杨,太兴宇,马辉,等. 双盘三支撑转子轴承系统松动-碰摩耦合故障分析[J]. 航空动力学报,2013,28(8): 977-982. doi: 10.13224/j.cnki.jasp.2013.05.003

    LIU Yang,TAI Xingyu,MA Hui,et al. Looseness-rubbing coupling fault of dual-disk three-support rotor-bearing system[J]. Journal of Aerospace Power,2013,28(8): 977-982. (in Chinese) doi: 10.13224/j.cnki.jasp.2013.05.003
    [19] YANG Yang,OUYANG Huajiang,YANG Yiren,et al. Vibration analysis of a dual-rotor-bearing-double casing system with pedestal looseness and multi-stage turbine blade-casing rub[J]. Mechanical Systems and Signal Processing,2019,143(4): 106845.1-106845.25.
    [20] 罗忠,王晋雯,韩清凯,等. 组合支承转子系统动力学的研究进展[J]. 机械工程学报,2021,57(7): 44-60. doi: 10.3901/JME.2021.07.044

    LUO Zhong,WANG Jinwen,HAN Qingkai,et al. Research progress on dynamics of combined support rotor system[J]. Journal of Mechanical Engineering,2021,57(7): 44-60. (in Chinese) doi: 10.3901/JME.2021.07.044
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  • 收稿日期:  2021-06-13
  • 网络出版日期:  2023-04-29

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