The physics of fatigue crack initiation

被引:499
|
作者
Sangid, Michael D. [1 ]
机构
[1] Purdue Univ, Coll Engn, Sch Aeronaut & Astronaut, W Lafayette, IN 47907 USA
关键词
Fatigue; Crack initiation; Microstructure; Slip irreversibility; Persistent slip bands; PERSISTENT SLIP BANDS; COPPER SINGLE-CRYSTALS; LOW-CYCLE-FATIGUE; RANGE INTERNAL-STRESSES; COLD-DWELL FATIGUE; GRAIN-BOUNDARIES; DISLOCATION-STRUCTURES; TWIN BOUNDARIES; DEFORMATION-BEHAVIOR; SURFACE-MORPHOLOGY;
D O I
10.1016/j.ijfatigue.2012.10.009
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The fatigue life of a component can be expressed as the sum of two segments of life: (a) the number of loading cycles required to initiate a crack and (b) the number of cycles it takes that crack to propagate to failure. In this review, the primary emphasis is relating the fatigue crack initiation to the microstructure of the material. Many studies have focused on this phenomenon over the years and the goal of this paper is to put this work in perspective and encourage future work of fatigue in polycrystals based on the material's microstructure. In order to address fatigue, it is necessary to understand the mechanisms that facilitate crack initiation. Slip irreversibilities exist in a material and accumulate during fatigue loading. At the defect level, irreversibilities are a result of dislocations: annihilating, cross-slipping, penetrating precipitates, transmitting through grain boundaries, and piling-up. These slip irreversibilities are the early signs of damage during cyclic loading. The dislocations subsequently form low-energy, stable structures as a means to accommodate the irreversible slip processes and increasing dislocation density during cyclic forward and reverse loading. The result is strain localizing in a small region within the materials, i.e. persistent slip bands and dislocation cells/bundles. Strain localization is a precursor to crack initiation. This review paper will focus on experimental observations of strain localization and the theory and numerical analysis of both slip irreversibilities and low energy configuration defect structures. This fundamental understanding is necessary to study persistent slip bands in FCC metals and alloys including the appropriate characterization, theory, and modeling. From this fundamental knowledge both micromechanical and crystal plasticity models can be used to predict crack initiation, which are also reviewed. Finally, this review ends with a discussion of the future of fatigue modeling and experiments. (C) 2012 Elsevier Ltd. All rights reserved.
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页码:58 / 72
页数:15
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