Effect of B2 Precipitation on Hot Ductility of Fe-22Mn-9Al-0.6C Low-Density Steel

被引:0
作者
Wang, Jun [1 ]
Man, Tinghui [1 ]
Zhou, Yihao [1 ]
Wei, Xicheng [1 ]
Dong, Han [1 ]
机构
[1] Shanghai Univ, Sch Mat Sci & Engn, Shanghai 200444, Peoples R China
基金
上海市自然科学基金;
关键词
Fe-Mn-Al-C low-density steels; hot ductility; B2; precipitate; secondary phase transformation; MECHANICAL-PROPERTIES; DEFORMATION-BEHAVIOR; KAPPA-CARBIDE; PHASE-TRANSFORMATIONS; TENSILE PROPERTIES; INDUCED PLASTICITY; IRON-ALUMINUM; AL CONTENT; MICROSTRUCTURE; STRENGTH;
D O I
10.3390/met14060724
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Fe-Mn-Al-C low-density steels are regarded as promising materials applied in the automotive industry to achieve the minimization of vehicular emissions and fuel consumption. This study investigates the high-temperature strength and hot ductility of Fe-22Mn-9Al-0.6C low-density steel through high-temperature tensile tests at 800-950 degrees C. The high-temperature strength decreases with an increasing deformation temperature. This indicates that the precipitation of B2 reduces the hot ductility during the hot deformation of steel, where the results are consistent with those during the solid-solution treatment at 800-950 degrees C with a holding time of 0.5 h. Furthermore, at 800 degrees C the gamma transforms into a mixture of alpha + DO3 and kappa-carbide precipitates. A transformation of kappa + DO3 -> B2 occurs in the temperature range of 850-900 degrees C, and at this point the kappa-carbide dissolves into the matrix and B2 is generated, resulting in a significant decrease in hot ductility. As the temperature increases up to 950 degrees C, B2 emerges and transforms into the delta phase, and the kappa-carbide precipitates along the gamma/gamma grain boundaries. The precipitation of B2 during high-temperature treatments in Fe-Mn-Al-C low-density steels is the critical factor affecting hot ductility, leading to crack generation; therefore, it is extremely essential to prevent the temperature interval of B2 precipitation during hot deformation processes.
引用
收藏
页数:11
相关论文
共 51 条
[1]   Diagram of phase transformations in the austenite of hardened alloy Fe-28% Mn-8.5% Al-1% C-1.25% Si as a result of aging due to isothermal heating [J].
Acselrad, O. ;
Kalashnikov, I. S. ;
Silva, E. M. ;
Khadyev, Mi. S. ;
Simao, R. A. .
METAL SCIENCE AND HEAT TREATMENT, 2006, 48 (11-12) :543-553
[2]  
[Anonymous], 2019, Metallic Materials-Tensile Testing-Part 1: Method of Test at Room Temperature. Standardization Administration of China (SAC)
[3]  
Brüx U, 2002, STEEL RES, V73, P543
[4]   Excellent combination of strength and ductility in an Fe-9Al-28Mn-1.8C alloy [J].
Chang, K. M. ;
Chao, C. G. ;
Liu, T. F. .
SCRIPTA MATERIALIA, 2010, 63 (02) :162-165
[5]   Grain boundary precipitation behaviors in an Fe-9.8Al-28.6Mn-0.8Si-1.0C alloy [J].
Chao, CY ;
Hwang, CN ;
Liu, TF .
SCRIPTA MATERIALIA, 1996, 34 (01) :75-81
[6]   Current state of Fe-Mn-Al-C low density steels [J].
Chen, Shangping ;
Rana, Radhakanta ;
Haldar, Arunansu ;
Ray, Ranjit Kumar .
PROGRESS IN MATERIALS SCIENCE, 2017, 89 :345-391
[7]   Phase transformation of the L12 phase to kappa-carbide after spinodal decomposition and ordering in an Fe-C-Mn-Al austenitic steel [J].
Cheng, Wei-Chun ;
Cheng, Chih-Yao ;
Hsu, Chia-Wei ;
Laughlin, David E. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2015, 642 :128-135
[8]   Phase Transformations of an Fe-0.85 C-17.9 Mn-7.1 Al Austenitic Steel After Quenching and Annealing [J].
Cheng, Wei-Chun .
JOM, 2014, 66 (09) :1809-1820
[9]   Effect of aging on the microstructure and deformation behavior of austenite base lightweight Fe-28Mn-9Al-0.8C steel [J].
Choi, Kayoung ;
See, Chang-Hyo ;
Lee, Hakcheol ;
Kim, S. K. ;
Kwak, Jai Hyun ;
Chin, Kwang Geun ;
Parkd, Kyung-Tae ;
Kim, Nack J. .
SCRIPTA MATERIALIA, 2010, 63 (10) :1028-1031
[10]   LATTICE MODULATION AND FORMATION OF LAMELLAR DUPLEX FERRITE CUBIC CARBIDE MICROSTRUCTURE IN RAPIDLY SOLIDIFIED FE-NI-AL-C ALLOYS [J].
CHOO, WK ;
KIM, DG .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1987, 18 (05) :759-766