A review of failure of sintered steels: fractography of static and dynamic crack nucleation, coalescence, growth and propagation

被引:22
|
作者
Dudrova, Eva [1 ]
Kabatova, Margita [1 ]
机构
[1] Slovak Acad Sci, Inst Mat Res, Watsonova 47, Kosice 04001, Slovakia
关键词
Sintered steels; Static and fatigue failures; Crack nucleation; Coalescence and growth to failure; Fractography of sintered steels; Fracture micromechanics; FATIGUE BEHAVIOR; FRACTURE-BEHAVIOR; CR-MO; MICROSTRUCTURE; IRON; DEFORMATION; STRENGTH; POROSITY; TENSILE; BAINITE;
D O I
10.1080/00325899.2016.1145786
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The failure of sintered steels differs from the behaviour of wrought steels because of factors such as porosity, remnants of previous particle surfaces and generally more complex microstructures. All these factors influence initiation, growth and propagation of microcracks when the sintered microstructure is mechanically loaded. Fracture paths and fracture resistance are shown to be related to details of the microstructures comprising ferrite, austenite, bainite, martensite, pores and weak interfaces. All these have characteristic fracture resistance properties resulting in, frequently combinations of, dimple rupture, cleavage, intergranular and interparticle failure micromechanisms. Results are presented of systematic studies, enabling identification of relevant stresses, in static and dynamic three-point loading, as the cracking process progresses. In static loading, microcracking has been detected in some steels below the macroscopic yield stress and in the first 100 cycles in fatigue. Microcracks nucleate, grow and coalesce, in a step-wise manner, before achieving a catastrophic size - for which conventional fracture mechanics holds. Thus, application of Paris-type analysis to Stage II fatigue is therefore inappropriate. The review focuses on failure micromechanisms and interpretation of fracture surface composition of sintered steels, particularly of those based on Distaloy AE and Astaloy CrL powders. The relationships between microstructure and mechanical properties are discussed.
引用
收藏
页码:148 / 167
页数:20
相关论文
共 50 条
  • [21] Modeling of dynamic failure by nucleation and growth processes
    Hanim, S
    Ahzi, S
    JOURNAL DE PHYSIQUE IV, 2000, 10 (P9): : 829 - 834
  • [22] Crack initiation and early propagation in case hardened sintered PM steels under cyclic load
    Holmberg, Anders
    Wiklund, Urban
    Isaksson, Per
    Rudolphi, Asa Kassman
    POWDER METALLURGY, 2023, 66 (02) : 164 - 175
  • [23] Dynamic Wettability on the Lubricant-Impregnated Surface: From Nucleation to Growth and Coalescence
    Guo, Lin
    Tang, G. H.
    Kumar, Satish
    ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (23) : 26555 - 26565
  • [24] Micromechanism of ductile crack initiation in structural steels based on void nucleation and growth
    Ishikawa, N
    Parks, DM
    Kurihara, M
    ISIJ INTERNATIONAL, 2000, 40 (05) : 519 - 527
  • [25] The influence of microcrack nucleation on dynamic crack growth - a numerical study
    Rafiee, S
    Gross, D
    Seelig, T
    ENGINEERING FRACTURE MECHANICS, 2004, 71 (4-6) : 849 - 857
  • [26] Simulation of dynamic crack propagation under quasi-static loading
    N. A. Kazarinov
    V. A. Bratov
    Yu. V. Petrov
    Doklady Physics, 2014, 59 : 99 - 102
  • [27] Simulation of dynamic crack propagation under quasi-static loading
    Kazarinov, N. A.
    Bratov, V. A.
    Petrov, Yu. V.
    DOKLADY PHYSICS, 2014, 59 (02) : 99 - 102
  • [28] INFLUENCE OF STRESS-CONCENTRATION ON THE RESISTANCE TO FATIGUE FAILURE OF STEELS BY THE CRITERIA OF CRACK NUCLEATION
    TROSHCHENKO, VT
    DRAGAN, VI
    STRENGTH OF MATERIALS, 1986, 18 (02) : 123 - 129
  • [29] Evaluation of the cementite morphology influence on the hydrogen induced crack nucleation and propagation path in carbon steels
    Karimi, Shabnam
    Taji, Iman
    Hajilou, Tarlan
    Barnoush, Afrooz
    Johnsen, Roy
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (30) : 14121 - 14129
  • [30] Dynamic and static characterization of compact crack arrest tests of navy and nuclear steels
    Joyce, James A.
    Link, R. E.
    Roe, C.
    Sobotka, J. C.
    ENGINEERING FRACTURE MECHANICS, 2010, 77 (02) : 337 - 347