Strain hardening behavior, strain rate sensitivity and hot deformation maps of AISI 321 austenitic stainless steel

被引:10
作者
Ghazani, Mehdi Shaban [1 ]
Eghbali, Beitallah [2 ]
机构
[1] Univ Bonab, Dept Mat Sci Engn, Bonab 5551761167, Iran
[2] Sahand Univ Technol, Fac Mat Engn, Tabriz 513351996, Iran
关键词
strain hardening; strain rate sensitivity; processing map; AISI 321 austenitic stainless steel; hot compression; PROCESSING MAPS; SUPERPLASTICITY; INSTABILITY;
D O I
10.1007/s12613-020-2163-4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Hot compression tests were performed on AISI 321 austenitic stainless steel in the deformation temperature range of 800-1200 degrees C and constant strain rates of 0.001, 0.01, 0.1, and 1 s(-1). Hot flow curves were used to determine the strain hardening exponent and the strain rate sensitivity exponent, and to construct the processing maps. Variations of the strain hardening exponent with strain were used to predict the microstructural evolutions during the hot deformation. Four variations were distinguished reflecting the different microstructural changes. Based on the analysis of the strain hardening exponent versus strain curves, the microstructural evolutions were dynamic recovery, single and multiple peak dynamic recrystallization, and interactions between dynamic recrystallization and precipitation. The strain rate sensitivity variations at an applied strain of 0.8 and strain rate of 0.1 s(-1) were compared with the microstructural evolutions. The results demonstrate the existence of a reliable correlation between the strain rate sensitivity values and evolved microstructures. Additionally, the power dissipation map at the applied strain of 0.8 was compared with the resultant microstructures at predetermined deformation conditions. The microstructural evolutions strongly correlated to the power dissipation ratio, and dynamic recrystallization occurred completely at lower power dissipation ratios.
引用
收藏
页码:1799 / 1810
页数:12
相关论文
共 25 条
[11]   Correcting the Stress-Strain Curve in Hot Compression Process to High Strain Level [J].
Li, Y. P. ;
Onodera, E. ;
Matsumoto, H. ;
Chiba, A. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2009, 40A (04) :982-990
[12]   Strain rate sensitivity of ultrafine-grained aluminium processed by severe plastic deformation [J].
May, J ;
Höppel, HW ;
Göken, M .
SCRIPTA MATERIALIA, 2005, 53 (02) :189-194
[13]   Characterization of hot deformation behavior of 410 martensitic stainless steel using constitutive equations and processing maps [J].
Momeni, A. ;
Dehghani, K. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2010, 527 (21-22) :5467-5473
[14]   Identification of flow instabilities in the processing maps of AISI 304 stainless steel [J].
Murty, SVSN ;
Rao, BN ;
Kashyap, BP .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2005, 166 (02) :268-278
[15]   Processing maps for hot deformation of rolled AZ31 magnesium alloy plate: Anisotropy of hot workability [J].
Prasad, Y. V. R. K. ;
Rao, K. P. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 487 (1-2) :316-327
[16]  
Prasad Y.V.R.K., 2015, HOT WORKING GUIDE CO, VSecond
[17]  
Rasti J., 2011, Int J ISSI, V8, P26
[18]   OVERVIEW NO-35 - DYNAMIC RECRYSTALLIZATION - MECHANICAL AND MICROSTRUCTURAL CONSIDERATIONS [J].
SAKAI, T ;
JONAS, JJ .
ACTA METALLURGICA, 1984, 32 (02) :189-209
[19]   ADVANCES IN SUPERPLASTICITY AND IN SUPERPLASTIC MATERIALS [J].
SHERBY, OD .
ISIJ INTERNATIONAL, 1989, 29 (08) :698-716
[20]   Effects of aluminum content and strain rate on strain hardening behavior of cast magnesium alloys during compression [J].
Tahreen, N. ;
Chen, D. L. ;
Nouri, M. ;
Li, D. Y. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2014, 594 :235-245