The mechanism of hydrogen embrittlement in intercritically annealed medium Mn TRIP steel

被引:159
作者
Han J. [1 ]
Nam J.-H. [1 ]
Lee Y.-K. [1 ]
机构
[1] Department of Materials Science and Engineering, Yonsei University, Seoul
关键词
Brittle-ductile transition; Hydrogen embrittlement; Medium Mn steel; Tensile behavior; TRIP-assisted steel; Ultrafine-grained materials;
D O I
10.1016/j.actamat.2016.04.038
中图分类号
学科分类号
摘要
The objective of this study was to investigate the mechanisms of hydrogen embrittlement (HE) in intercritically annealed medium Mn steel. For this purpose, both hot-rolled and cold-rolled Fe-7Mn-0.1C-0.5Si (wt.%) steels were annealed at 640 °C for 30 min. The annealed specimens had a dual-phase microstructure of retained austenite (γR) and ferrite (α) with different morphologies; a lath shape for the hot-rolled and annealed (HRA) specimen and a globular shape for the cold-rolled and annealed (CRA) specimen. Although the difference in microstructural morphology did not influence the H permeation, it significantly affected the HE behavior. The H-charged HRA (HRAH) specimen was fractured by intergranular cracking occurring along the boundaries of prior γ grains by the H-enhanced decohesion (HEDE) mechanism. The intergranular cracking leaved both flat and rugged facets, which appeared at the prior γ grain boundaries without and with γR, respectively. The H-charged CRA (CRAH) specimen was fractured to leave both dimples filled with grains and empty dimples at the fractured surface. The dimples filled with grains were generated by intergranular cracking occurring along the boundaries of γR grains by the HEDE mechanism. The empty dimples were made by intragranular cracking occurring inside the α grains by the H-enhanced local plasticity (HELP) mechanism. The CRAH specimen exhibited a smaller elongation loss than the HRAH specimen because cracks were propagated by frequently changing their direction along the boundaries of nano-sized γR grains or into α grains. © 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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页码:1 / 10
页数:9
相关论文
共 39 条
[1]  
Han J., Lee S.-J., Jung J.-G., Lee Y.-K., The effects of the initial martensite microstructure on the microstructure and tensile properties of intercritically annealed Fe-9Mn-0.05C steel, Acta Mater., 78, pp. 369-377, (2014)
[2]  
Lee S., De Cooman B.C., On the selection of the optimal intercritical annealing temperature for medium Mn TRIP steel, Metall. Mater. Trans. A, 44, pp. 5018-5024, (2013)
[3]  
Suh D.W., Ryu J.H., Joo M.S., Yang H.S., Lee K., Bhadeshia H.K.D.H., Medium-alloy manganese-rich transformation-induced plasticity steels, Metall. Mater. Trans. A, 44, pp. 286-293, (2013)
[4]  
Luo H., Shi J., Wang C., Cao W., Sun X., Dong H., Experimental and numerical analysis on formation of stable austenite during the intercritical annealing of 5Mn steel, Acta Mater., 59, pp. 4002-4014, (2011)
[5]  
Jang J.M., Kim S.J., Kang N.H., Cho K.M., Suh D.W., Effects of annealing conditions on microstructure and mechanical properties of low carbon, manganese transformation-induced plasticity steel, Met. Mater. Int., 15, pp. 909-916, (2009)
[6]  
Han J., Lee Y.-K., The effects of the heating rate on the reverse transformation mechanism and the phase stability of reverted austenite in medium Mn steels, Acta Mater., 67, pp. 354-361, (2014)
[7]  
Furukawa T., Huang H., Matsumura O., Effects of carbon content on mechanical properties of 5%Mn steels exhibiting transformation induced plasticity, Mater. Sci. Technol., 10, pp. 964-970, (1994)
[8]  
Wang C., Cao W., Shi J., Huang C., Dong H., Deformation microstructures and strengthening mechanisms of an ultrafine grained duplex medium-Mn steel, Mater. Sci. Eng. A, 562, pp. 89-95, (2013)
[9]  
De Cooman B.C., Gibbs P., Lee S., Matlock D.K., Transmission electron microscopy analysis of yielding in ultrafine-grained medium Mn transformation-induced plasticity steel, Metall. Mater. Trans. A, 44, pp. 2563-2572, (2013)
[10]  
Lee Y.-K., Han J., Current opinion in medium manganese steel, Mater. Sci. Technol., 31, pp. 843-856, (2015)