Tension-compression asymmetry of metastable austenitic stainless steel studied by in-situ high-energy X-ray diffraction

被引:4
作者
Boenisch, Matthias [1 ]
Barriobero-Vila, Pere [2 ]
Dhekne, Pushkar Prakash [1 ]
Stark, Andreas [3 ]
Schell, Norbert [3 ]
Ungar, Tamas [4 ]
Requena, Guillermo [5 ,6 ]
Seefeldt, Marc [1 ]
机构
[1] Katholieke Univ Leuven, Dept Mat Engn, Kasteelpark Arenberg 44, B-3001 Leuven, Belgium
[2] Tech Univ Catalonia UPC, Dept Mat Sci & Engn, Eduard Maristany Ave 16, Barcelona 08019, Spain
[3] Helmholtz Zentrum Hereon, Inst Mat Res, Max Planck Str 1, D-21502 Geesthacht, Germany
[4] Eotvos Lorand Univ, Dept Mat Phys, H-1518 Budapest, Hungary
[5] German Aerosp Ctr DLR, Inst Mat Res, D-51147 Cologne, Germany
[6] Rhein Westfal TH Aachen, Met Struct & Mat Aerosp Engn, D-52062 Aachen, Germany
基金
比利时弗兰德研究基金会;
关键词
A. phase transformation; A; ductility; B. anisotropic material; C. non-destructive evaluation; Transformation-induced plasticity; STRAIN-INDUCED MARTENSITE; STACKING-FAULT ENERGY; DEFORMATION-INDUCED MARTENSITE; TRANSFORMATION-INDUCED PLASTICITY; PHASE-TRANSFORMATIONS; MECHANICAL-PROPERTIES; NEUTRON-DIFFRACTION; TEXTURE ANALYSIS; ALPHA-TITANIUM; FLOW STRESSES;
D O I
10.1016/j.ijplas.2023.103767
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This work studies the tension-compression asymmetry (TCA) of metastable austenitic stainless steel (MASS) in uniaxial loading depending on temperature. In-situ high-energy X-ray diffraction was used to simultaneously probe phase fractions, transformation kinetics, crystallographic texture, lattice strains, strain and stress partitioning between austenite and martensites during quasi-static tensile and compressive deformation at 24, 60 and 100 degrees C. Complementary relaxed -constraint crystal plasticity simulations and calculations of the mechanical driving force related to the formation of alpha' and e martensites were performed. At 24 degrees C, martensitic transformations (MTs) prevail, while at 100 degrees C dislocation slip is the dominant deformation mechanism for both load senses. Macroscopic stress-strain response and transformation behaviour exhibit TCA, with compression promoting the conversion of e into alpha'. Transformation kinetics were analyzed in relation to shear banding and the geometric alignment of e lamellas depending on load sense and temperature. A strong TCA was found for crystallographic texture, bearing signatures of grain rotation due to plastic slip and of MT in case of austenite (gamma). For both load senses, the relative strengths of austenite and martensite texture fibres were related to the driving force anisotropy for alpha' formation calculated based on the phenomenological theory of martensite crystallography. Texture evolution of alpha' is largely controlled by the MT itself, not by grain rotation. Analysis of differently orientated austenite grain families revealed a pronounced TCA of the lattice strains, linked to the gamma -> e MT. This was found to be a direct consequence of driving force and volume change related to e formation. Furthermore, stress is shared differently between austenite and martensites in tension vs. in compression. gamma hardens more and hence carries a larger portion of the total stress in compression than in tension. The origin for this TCA could be found in the elasto-plastic accommodation of the volume change related to alpha' formation. These findings can aid the development of new material laws for MASSs that are sensitive to load-sense and temperature for advanced forming simulations.
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页数:26
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