Life prediction and risk assessment on the aircraft cable based on thermal damage features

被引:0
作者
Hu, Yinxiao [1 ]
Yang, Haoqi [1 ]
Ge, Hongjuan [1 ]
Hua, Yingchun [2 ]
Jin, Hui [1 ]
Pan, Kuangming [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Nanjing, Jiangsu, Peoples R China
[2] Civil Aviat Management Inst China, Beijing, Peoples R China
来源
EKSPLOATACJA I NIEZAWODNOSC-MAINTENANCE AND RELIABILITY | 2024年 / 26卷 / 04期
基金
中国国家自然科学基金;
关键词
aircraft cable; life prediction; risk assessment; thermal damage factor; radial melting rate;
D O I
10.17531/ein/191696
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Aiming at the operational risk caused by melting of aircraft cable insulation layer, an aircraft cable safety analysis method based on thermal damage characteristics is proposed. Based on the mechanism of cable thermal damage, two types of damage characteristics are defined, which characterize the influence and degree of cable thermal damage. Use thermal damage influence factor to indicate that cable thermal damage accelerates cable failure, and a method of cable life prediction is proposed. Meanwhile, the proportion coefficient mu is set to evaluate the applicability of the life prediction method. The life prediction results show that the cable life prediction method proposed owes higher accuracy, and comparison results show that the proposed method MTBF1 is more applicable in different operating areas. Moreover, a dynamic risk assessment model for aircraft cable is constructed from two perspectives, and the failure probability of cable is modified by the thermal damage influence factor. The risk assessment result is consistent with the experimental, which proves the effectiveness of the model.
引用
收藏
页数:13
相关论文
共 43 条
  • [1] ENERGY LOSSES' REDUCTION IN METALLIC SCREENS OF MV CABLE POWER LINES AND BUSBAR BRIDGES COMPOSED OF SINGLE-CORE CABLES
    Andruszkiewicz, Jerzy
    Lorenc, Jozef
    Lowczowski, Krzysztof
    Weychan, Agnieszka
    Zawodniak, Jozef
    [J]. EKSPLOATACJA I NIEZAWODNOSC-MAINTENANCE AND RELIABILITY, 2020, 22 (01): : 15 - 25
  • [2] Bukya Mahipal, 2020, AIP Conference Proceedings, V2294, DOI 10.1063/5.0031351
  • [3] Bearing life prediction method based on the improved FIDES reliability model
    Chen, Chuanhai
    Li, Bowen
    Guo, Jinyan
    Liu, Zhifeng
    Qi, Baobao
    Hua, Chunlei
    [J]. RELIABILITY ENGINEERING & SYSTEM SAFETY, 2022, 227
  • [4] Effects of connection conditions between insulation screen and Al sheath on the buffer layer failures of high-voltage XLPE cables
    Chen, Yun
    Hui, Baojun
    Cheng, Yanting
    Chen, Yanwen
    Hao, Yanpeng
    Fu, Mingli
    Yang, Lin
    Li, Licheng
    [J]. ENGINEERING FAILURE ANALYSIS, 2021, 122
  • [5] The effect of temperature and stress coefficients of electrical conductivity on the life of HVDC extruded cable insulation subjected to type test conditions
    Diban, B.
    Mazzanti, G.
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2020, 27 (04) : 1313 - 1321
  • [6] European Committee for Standardization, 2010, EN 3475-100
  • [7] Fusion model based RUL prediction method of lithium-ion battery under working conditions
    Fang, Pengya
    Sui, Xiaoxiao
    Zhang, Anhao
    Wang, Di
    Yin, Liping
    [J]. EKSPLOATACJA I NIEZAWODNOSC-MAINTENANCE AND RELIABILITY, 2024, 26 (03):
  • [8] Federal Aviation Administration, 2002, AC 25.1309-1B System Design and Analysis
  • [9] FIDES guide, 2009, Reliability methodology for electronic systems, VA
  • [10] Gao Cheng, 2020, JOURNALS: Microelectronics, V20, P743, DOI [10.13911/j.cnki.1004-3365.190631, DOI 10.13911/J.CNKI.1004-3365.190631]