Research on virtual test for load spectrum of components in a self-propelled gun movement system

被引:0
|
作者
Tang Qinghong [1 ]
Ma Jisheng [1 ]
Wu Dalin [1 ]
机构
[1] Ordnance Engn Coll, Shijiazhuang 050003, Peoples R China
关键词
virtual prototype; load spectrum; dynamic simulation; self-propelled gun;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The load spectrum is a necessary condition for predicting the fatigue life of a component. According to the difficulty of obtaining the load spectrums of the components in a self-propelled gun movement system though environmental tests, the virtual test method based on the virtual prototype technology was proposed. In this paper, the configurations and the motion relations of the self-propelled gun were analyzed, the preliminary virtual prototype was established, the motion constraints were applied and the mechanics models were defined. After that, the virtual prototype of a self-propelled gun was established. Through simulating driving process, the virtual test for load spectrum was realized. The result proves that virtual test for load spectrum based on virtual prototype technology is a feasible method.
引用
收藏
页码:873 / 876
页数:4
相关论文
共 50 条
  • [21] Finite element analysis for the hull of self-propelled gun
    Nanjing Li Gong Daxue Xuebao, 5 (397):
  • [22] Measuring principle of the center of elasticity for the self-propelled gun
    Wang, BY
    Wu, SL
    Li, ZH
    ISTM/2001: 4TH INTERNATIONAL SYMPOSIUM ON TEST AND MEASUREMENT, VOLS 1 AND 2, CONFERENCE PROCEEDINGS, 2001, : 995 - 998
  • [23] The testability-evaluation model of self-propelled gun
    Wei, YM
    Wang, SH
    Gan, L
    Tao, FH
    Zhou, LX
    ISTM/2003: 5TH INTERNATIONAL SYMPOSIUM ON TEST AND MEASUREMENT, VOLS 1-6, CONFERENCE PROCEEDINGS, 2003, : 2906 - 2908
  • [24] Analysis and Simulation of Stochastic Fatigue Reliability for Running System of Self-Propelled Gun
    Hu, Huibin
    Cao, Lijun
    Jia, Lianpeng
    Cao, Xinwen
    Chen, Shuxiao
    Chen, Ming
    2011 INTERNATIONAL CONFERENCE ON QUALITY, RELIABILITY, RISK, MAINTENANCE, AND SAFETY ENGINEERING (ICQR2MSE), 2011, : 153 - 157
  • [25] Dynamic analysis of a self-propelled gun firing on the move
    Feng, Changgen
    Wen, Bo
    Li, Caibo
    Binggong Xuebao/Acta Armamentarii, 2002, 23 (04):
  • [26] Inherent capabilities analysis of self-propelled anti-air gun system
    Peng, Feng-Sheng
    Yang, Zhi-Liang
    Liao, Zhen-Qiang
    Dandao Xuebao/Journal of Ballistics, 2009, 21 (03): : 53 - 56
  • [27] Investigative exploration of a fuzzy expert system on the fault forecasting for a self-propelled gun
    Huang, Jingde
    Wang, Xinggui
    Wang, Zuguang
    Binggong Xuebao/Acta Armamentarii, 2002, 23 (03):
  • [28] Research on diagnosing the gear faults of a gearbox in self-propelled gun using acoustic measurement
    Tang, LW
    Wang, H
    Wang, W
    Luan, JY
    Zheng, HQ
    ISTM/2003: 5TH INTERNATIONAL SYMPOSIUM ON TEST AND MEASUREMENT, VOLS 1-6, CONFERENCE PROCEEDINGS, 2003, : 226 - 228
  • [29] Research on Nonlinear Dynamic Simulation and Fatigue Reliability Life Prediction for Synthesis Transmission System of Self-Propelled Gun
    于贵波
    曹立军
    王书海
    马乔
    JournalofShanghaiJiaotongUniversity(Science), 2018, 23 (06) : 776 - 783
  • [30] On load assumptions for self-propelled forage harvesters
    Stellmach, S.
    Braun, L. M.
    Wachter, M.
    Esderts, A.
    Diekhaus, S.
    INTERNATIONAL JOURNAL OF FATIGUE, 2021, 147