Failure Mechanisms and Damage Model of Ductile Cast Iron Under Low-Cycle Fatigue Conditions

被引:0
|
作者
Xijia Wu
Guangchun Quan
Ryan MacNeil
Zhong Zhang
Clayton Sloss
机构
[1] National Research Council Canada,Structures, Materials and Manufacturing, Aerospace
[2] Wescast Industries Inc.,undefined
来源
Metallurgical and Materials Transactions A | 2014年 / 45卷
关键词
Fatigue; Oxide Scale; Cyclic Stress; Ductile Cast Iron; Grain Boundary Slide;
D O I
暂无
中图分类号
学科分类号
摘要
Strain-controlled low-cycle fatigue (LCF) tests were conducted on ductile cast iron (DCI) at strain rates of 0.02, 0.002, and 0.0002/s in the temperature range from room temperature to 1073 K (800 °C). A constitutive-damage model was developed within the integrated creep-fatigue theory (ICFT) framework on the premise of strain decomposition into rate-independent plasticity and time-dependent creep. Four major damage mechanisms: (i) plasticity-induced fatigue, (ii) intergranular embrittlement (IE), (iii) creep, and (iv) oxidation were considered in a nonlinear creep-fatigue interaction model which represents the overall damage accumulation process consisting of oxidation-assisted fatigue crack nucleation and propagation in coalescence with internally distributed damage (e.g., IE and creep), leading to final fracture. The model was found to agree with the experimental observations of the complex DCI-LCF phenomena, for which the linear damage summation rule would fail.
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页码:5085 / 5097
页数:12
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