Failure analysis of hook end self locking nuts of an aero-engine

被引:2
|
作者
Biswas, Swati [1 ]
Kumar, Jivan [1 ]
机构
[1] Gas Turbine Res Estab, Mat Grp, Bengaluru, India
关键词
GTM Su 718; Intergranular fracture; Hydrogen embrittlement; Electroplating; De-embrittlement treatment; HYDROGEN EMBRITTLEMENT; CRACK INITIATION; STRESS CRACKING; PRECIPITATION; SCREWS;
D O I
10.1016/j.engfailanal.2019.104240
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Repeated premature failures of hook end self locking nuts, a developmental aero-engine component, were encountered after ground test runs. The part is a component of turbine module of the engine and experiences severe temperature-loading condition during engine tests. It was manufactured using a y'-y '' precipitation hardened Ni-Fe-Cr wrought alloy. The finished cornponents were subjected to silver plating process to ensure anti-seizure. The failed hook nuts were examined in details using stereo zoom microscope, optical microscope and scanning electron microscope. Fractured surface exhibited two distinguished regions. Intergranular fracture, characteristics of brittle failure morphology, was observed on majority of the fractured surface. Shear lip formation was evidenced towards one edge indicating final fracture region. This region exhibited dimples, typically seen in case of overload failure. The intergranular fracture was concluded to be due to hydrogen embrittlement of the part. The electroplating process on the finished hook end self locking nuts revealed that no de-embrittlement treatment was carried out on the components after silver plating. The electrolysis process resulted hydrogen entrapment during plating. Omission of de-embrittlement treatment caused the entrapped hydrogen to diffuse into the material thereby making the material to be brittle. This resulted brittle failure of the hook end self locking nuts.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Failure Analysis of Bearings of Aero-Engine
    Manish Roy
    [J]. Journal of Failure Analysis and Prevention, 2019, 19 : 1615 - 1629
  • [2] Failure Analysis of Bearings of Aero-Engine
    Roy, Manish
    [J]. JOURNAL OF FAILURE ANALYSIS AND PREVENTION, 2019, 19 (06) : 1615 - 1629
  • [3] Failure analysis of an aero-engine combustor liner
    Lv, Fengjun
    Li, Quan
    Fu, Guoru
    [J]. ENGINEERING FAILURE ANALYSIS, 2010, 17 (05) : 1094 - 1101
  • [4] Failure Analysis of Compressor Blades of Aero-Engine
    Madhav, S.
    Roy, Manish
    [J]. JOURNAL OF FAILURE ANALYSIS AND PREVENTION, 2022, 22 (03) : 968 - 982
  • [5] Failure Analysis of Compressor Blades of Aero-Engine
    S. Madhav
    Manish Roy
    [J]. Journal of Failure Analysis and Prevention, 2022, 22 : 968 - 982
  • [6] Failure analysis of turbine stator vanes of aero-engine
    Madhav, S.
    Roy, Manish
    [J]. ENGINEERING FAILURE ANALYSIS, 2020, 117 (117)
  • [7] Test on starting failure for an aero-engine
    Jiang X.
    Wang H.
    Tang Z.
    [J]. Hangkong Dongli Xuebao/Journal of Aerospace Power, 2019, 34 (04): : 813 - 820
  • [8] Failure Analysis of Over-Temperature of Aero-Engine Bearing
    Yunfei Zhong
    Tianfu Li
    Shen Qu
    Hongjun Huang
    Zhefeng Zhang
    [J]. Journal of Failure Analysis and Prevention, 2023, 23 (5) : 1869 - 1879
  • [9] Failure risk analysis for fracture critical aero-engine components
    School of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, China
    不详
    [J]. Beijing Hangkong Hangtian Daxue Xuebao, 2009, 4 (464-467): : 464 - 467
  • [10] Failure Analysis of Over-Temperature of Aero-Engine Bearing
    Zhong, Yunfei
    Li, Tianfu
    Qu, Shen
    Huang, Hongjun
    Zhang, Zhefeng
    [J]. JOURNAL OF FAILURE ANALYSIS AND PREVENTION, 2023, 23 (05) : 1869 - 1879