Microstructure and texture evolutions of 310S austenitic stainless steel after cryogenic rolling and subsequent annealing: X-ray and electron backscatter diffraction studies冷轧及退火对310S 奥氏体不锈钢的微观结构和组织的影响: 基于X 射线和电子背散射衍射分析

被引:0
作者
R. B. Heidari
M. Eskandari
M. Yeganeh
机构
[1] Shahid Chamran University of Ahvaz,Department of Materials Engineering, Faculty of Engineering
来源
Journal of Central South University | 2023年 / 30卷
关键词
310S stainless steel; deformation; annealing; electron backscattered diffraction; microstructure; texture; 310S 不锈钢; 形变; 退火; 电子背散射衍射; 微观结构; 组织;
D O I
暂无
中图分类号
学科分类号
摘要
The present work aims to study the microstructure and texture evolutions of thermomechanically processed 310S austenitic stainless steel. The material was cryo-rolled at 20%, 50% and 90% thickness reduction, followed by annealing at 1023, 1223 and 1323 K for 5, 15 and 30 min, respectively. After a 20% thickness reduction, strain-induced α′-martensite was seen along with deformation twinning within the austenite grains. The volume fraction of the deformation twinning was higher than that of α′-martensite. By increasing deformation from 50% to 90%, the volume fraction of α′-martensite went from 11% to 69%, and twinning was replaced by martensite. Brass, Goss, and S components were the dominant textures in the austenite phase after deformation, while the main texture components in α′-martensite were R-Cu, R-cube, F, and E. Brass component was further increased by increasing the thickness reduction in contrast to the Goss component. During annealing, martensite to austenite reversion and recrystallization occurred in the deformed austenite, which resulted in an increase in the volume fractions of the Goss and Brass recrystallization components. However, the annealing texture of the alloy was found to be approximately the same as the cryo-rolling texture. The kinetics of martensite reversion at 1223 K for 5 min was much faster than that at 1023 K. An equiaxed microstructure was not detected at 1023 K for 5 min due to incomplete martensite reversion and primary recrystallization. The optimum annealing temperature for obtaining an ultrafine grain structure was 1023 K for 15 min. Recrystallization and tangible grain growth swiftly occurred at 1173 K and 1273 K.
引用
收藏
页码:763 / 785
页数:22
相关论文
共 173 条
[1]  
Yeganeh M(2020)Corrosion inhibition of l-methionine amino acid as a green corrosion inhibitor for stainless steel in the H Journal of Materials Engineering and Performance 29 3983-3994
[2]  
Khosravi-Bigdeli I(2019)SO Materials Science and Technology 35 77-88
[3]  
Eskandari M(2023) solution [J] CIRP Journal of Manufacturing Science and Technology 40 68-74
[4]  
Eskandari M(2022)High-strain-rate deformation behaviour of new high-Mn austenitic steel during impact shock-loading [J] Materials Today Communications 31 103638-172
[5]  
Mohtadi-Bonab M A(2022)Influence of low temperature heat treatment on microstructure, corrosion resistance and biological performance of 316L stainless steel manufactured by selective laser melting [J] Corrosion Science 207 110537-77
[6]  
Yeganeh M(2015)Comparison of the microstructure, corrosion resistance, and hardness of 321 and 310S austenitic stainless steels after thermo-mechanical processing [J] Materials & Design 67 165-744
[7]  
Moghadas S M J(2023)On the role of mechanical deformation in the environmental degradation of 310S stainless steels in supercritical carbon dioxide [J] High Temperature Corrosion of Materials 99 63-1032
[8]  
Yeganeh M(2009)Study on hot workability and optimization of process parameters of a modified 310 austenitic stainless steel using processing maps [J] Metallurgical and Materials Transactions A 40 729-186
[9]  
Zaree S R A(2022)Comparison of cycling high temperature corrosion at 650 °C in the presence of NaCl of various austenitic stainless steels [J] Materials Testing 64 1026-3487
[10]  
Salehi M(2012)Enhanced mechanical properties through reversion in metastable austenitic stainless steels [J] Materials Science and Engineering A 545 176-4733