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Mechanisms and micromechanics of intergranular ductile fracture
被引:0
作者:
Senac, C.
[1
]
机构:
[1] EDF R&D, Lab Renardieres, MMC, F-77250 Ecuelles, France
关键词:
Ductile fracture;
Intergranular fracture;
Grain boundary cavities;
Scanning electron fractography;
Local approach to fracture;
Irradiated materials;
Strain localization;
PRECIPITATE-FREE ZONES;
AUSTENITIC STAINLESS-STEELS;
GRAIN-BOUNDARY MISORIENTATION;
STRESS RELIEF CRACKING;
X-RAY MICROTOMOGRAPHY;
AL-LI ALLOYS;
VOID GROWTH;
PLASTIC-DEFORMATION;
BETA-TITANIUM;
CRYSTAL PLASTICITY;
D O I:
10.1016/j.ijsolstr.2024.112951
中图分类号:
O3 [力学];
学科分类号:
08 ;
0801 ;
摘要:
The process of void nucleation, growth, and coalescence is among the dominant ductile failure modes in metallic alloys and can be transgranular as well as intergranular. In the latter case, the phenomenon of void growth and coalescence happens at grain boundaries due to intense intergranular plastic flow and is associated with fracture surfaces displaying intergranular facets covered in fine dimples. The present review gives a comprehensive summary of intergranular ductile fracture mechanisms based on available experimental evidence, allowing to distinguish precisely this failure mode from other related processes. Moreover, the metallic alloys of industrial significance that can exhibit intergranular ductile fracture are carefully outlined. Then, in order to lay bridges between material science and fracture micromechanics, an overview of the current development of the local approach to fracture applied to grain boundary ductile failure is presented. Emphasis is placed on the accounting of crystallographic effects. Finally, prospects for progress in intergranular ductile fracture modeling and simulation are detailed. In particular, it is foreseen that conflicting trends seen on fracture toughness could be reconciled thanks to physically-based approaches.
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页数:35
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