Microstructure and residual stress evolution during cyclic elastoplastic deformation of AISI316L fabricated via laser powder bed fusion

被引:6
|
作者
Beltrami, Marco [1 ]
Pelegatti, Marco [1 ]
Magnan, Michele [1 ]
Lanzutti, Alex [1 ]
Avdeev, Maxim [2 ,4 ]
Luzin, Vladimir [2 ,5 ]
Leoni, Matteo [3 ]
De Bona, Francesco [1 ]
Salvati, Enrico [1 ]
机构
[1] Univ Udine, Polytech Dept Engn & Architecture DPIA, Via Sci 206, I-33100 Udine, Italy
[2] ANSTO, Australian Ctr Neutron Scattering, New Illawarra Rd, Lucas Heights, NSW 2234, Australia
[3] Saudi Aramco, Res & Analyt Serv Dept, POB 62, Dhahran 31311, Saudi Arabia
[4] Univ Sydney, Sch Chem, Sydney 2006, Australia
[5] Univ Newcastle, Sch Engn, Callaghan, NSW 2308, Australia
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2024年 / 898卷
关键词
AISI 316L stainless steel; Metal additive manufacturing; Residual stress; Microstructure; Low cycle fatigue; Dislocations density; AUSTENITIC STAINLESS-STEEL; SITU NEUTRON-DIFFRACTION; FATIGUE BEHAVIOR; MECHANICAL-PROPERTIES; 316L; TEXTURE; STRENGTH; EBSD; MTEX; SPECIFICATION;
D O I
10.1016/j.msea.2024.146416
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In metal additive manufacturing (MAM), microstructural properties such as texture, residual stresses, and dislocation density have emerged as key factors ruling the resulting mechanical performances. In this study, cylindrical AISI 316L specimens, fabricated with laser powder bed fusion (LPBF), were tested under cyclic elastoplastic (EP) deformation using a constant strain amplitude to highlight the evolution of residual stresses (RS), dislocation density and texture with increasing number of EP cycles, N, across the hardening-softening (H-S) transition stage, in the attempt to find correlations between relevant microstructural parameters and macroscopic properties. The structural and microstructural analysis is carried out through whole powder pattern modeling (WPPM) of neutron diffraction (ND) data and Electron Back-Scattering Diffraction (EBSD) analysis. The H-S transition is found to occur within 7-9 cycles, with RS fading out already after 5 cycles. Across the H-S transition, the trend of the maximum tensile stress correlates closely with the trend of WPPM-calculated total dislocation density, suggesting a major role of dislocations' characteristics in the evolution of macroscopic mechanical properties. EBSD analysis reveals the rearrangement of geometrically necessary dislocations (GND) into cellular structures, and moderate grain refinement, which are deemed to be responsible for the quick fading of RS in the very early stage of EP loading. ND-based texture analysis reveals a (220) preferential orientation retained throughout the EP tests but with orientation density functions (ODFs) changing non-monotonically with N, suggesting preliminary partial randomization of grains around the deformation axis followed by the recovery of crystallographic anisotropy and more localized ODFs.
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页数:16
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