A superheater creep-fatigue interaction failure and its stress assessment

被引:7
|
作者
Liu, William [1 ]
机构
[1] SGS New Zealand Ltd, Ind Serv NDT & Mat, Auckland, New Zealand
关键词
Superheater; Creep-fatigue interaction (CFI); Fractograph; Fracture-mechanism map;
D O I
10.1016/j.engfailanal.2020.105004
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Creep-fatigue interaction (CFI) is a common failure mode in turbine blades. However, this failure mode has rarely been reported in boiler superheaters. This article presents a failure analysis of CFI on a superheater in a black liquor-fired boiler. Two cracks in the HAZ of stitch weld were identified. The "beach marks" on fracture surfaces indicated the cyclic stress. Fractographic analysis distinguished the different fracture modes. Crack 1 initiated and propagated in the transgranular mode. Crack 2 initiated in intergranular mode and propagated in the mixture of intergranular and transgranular modes. On the base of the hoop stress and axial stress, the dynamic stress was the main root cause of CFI fracture. The dynamic stress can be calculated from the fracture orientation angle. The greater the fracture orientation angle, the higher the dynamic stress. The fracture-mechanism map was applied in this case study. In combination of fractographic analysis and stress calculation with the fracture-mechanism map, the crack fracture sequence was revealed. The two cracks did not initiate simultaneously, and their stress levels were significantly different. Through this case study the fracture-mechanism map was recommended as a guide to superheater fracture analysis.
引用
下载
收藏
页数:12
相关论文
共 50 条
  • [41] Creep-fatigue failure of an aero engine turbine blades
    Salam, I
    Tauqir, A
    Khan, AQ
    ENGINEERING FAILURE ANALYSIS, 2002, 9 (03) : 335 - 347
  • [42] DETERMINATION OF THE CREEP-FATIGUE INTERACTION DIAGRAM FOR ALLOY 617
    Wright, J. K.
    Carroll, L. J.
    Sham, T. -L.
    Lybeck, N. J.
    Wright, R. N.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, 2016, VOL 5, 2017,
  • [43] Creep-Fatigue Interaction Models for Grade 91 Steel
    Holmstrom, Stefan
    Pohja, Rami
    Payten, Warwick
    MATERIALS PERFORMANCE AND CHARACTERIZATION, 2014, 3 (02) : 156 - 181
  • [44] Modelling the effect of creep-fatigue interaction on crack growth
    Grover, PS
    Saxena, A
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 1999, 22 (02) : 111 - 122
  • [45] Determination of mode of damage during creep-fatigue interaction
    Hyder, MJ
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 2006, 128 (02): : 248 - 252
  • [46] Creep-fatigue interaction in heat resistant austenitic alloys
    Warner, Hugo
    Calmunger, Mattias
    Chai, Guocai
    Moverare, Johan
    12TH INTERNATIONAL FATIGUE CONGRESS (FATIGUE 2018), 2018, 165
  • [47] Normalized life prediction in terms of stress relaxation behavior under creep-fatigue interaction
    Jeong, CY
    Choi, BG
    Nam, SW
    MATERIALS LETTERS, 2001, 49 (01) : 20 - 24
  • [48] CREEP-FATIGUE INTERACTION IN AUSTENITIC STAINLESS-STEELS
    WAREING, J
    METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1977, 8 (05): : 711 - 721
  • [49] LIFE ESTIMATION METHOD BASED ON CREEP-FATIGUE INTERACTION
    MUNAKATA, Y
    SENDA, T
    BULLETIN OF THE JSME-JAPAN SOCIETY OF MECHANICAL ENGINEERS, 1986, 29 (258): : 3986 - 3992
  • [50] A new creep-fatigue interaction damage model and CDM-XFEM framework for creep-fatigue crack growth simulations
    Pandey, V. B.
    Singh, I. V.
    Mishra, B. K.
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2023, 124