Synergistic effect of austenitizing temperature and hot plastic deformation strain on the precipitation behavior in novel HSLA steel

被引:18
|
作者
Chen, Chih-Yuan [1 ,2 ]
Chen, Chien-Chon [1 ]
Yang, Jer-Ren [2 ]
机构
[1] Natl United Univ, Dept Energy Engn, Miaoli 36003, Taiwan
[2] Natl Taiwan Univ, Dept Mat Sci & Engn, Taipei 10617, Taiwan
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2015年 / 639卷
关键词
Hardness; Austenitizing; TEM; Nano-sized carbide; INTERPHASE PRECIPITATION; CARBIDE PRECIPITATION; MICROALLOYED STEELS; TI-NB; STRENGTH; MO; TRANSFORMATION; FERRITE; DESIGN;
D O I
10.1016/j.msea.2015.05.014
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Examination of thin foils of specimens with various austenitizing conditions by transmission electron microscopy revealed randomly homogeneous precipitation in the ferrite for each experimental condition. Though no interphase precipitation was found in the present study, two types of random precipitation morphologies were identified in the ferrite matrix. One was randomly and homogeneously precipitated carbides of smaller size ( < 10 nm), and the other was randomly precipitated carbides of larger size (1030 nm). Transmission electron microscopy results provided evidence that both types of precipitation carbides could be associated with the supersaturation of microalloying elements in the ferrite and austenite, respectively. A higher austenitizing temperature treatment can lead to more microalloying elements dissolving in the austenite such that many tiny carbides precipitation at the low isothermal holding temperature, which is believed to effectively strengthen the ferrite. Vickers hardness data revealed that, in specimens austenitized at 1200 degrees C and deformed at 900 degrees C with strains of 10% and 30%, the ranges of hardness distribution were 250-360 HV 0.1 and 310-400 HV 0.1, respectively. For specimens austenitized at 1000 degrees C and deformed at 900 degrees C with strains of 10% and 30%, the ranges of hardness distribution were 220-250 HV 0.1 and 220-260 HV 0.1, respectively. Therefore, the average Vickers hardness increased with the austenitizing temperature and deformation strain. However, a wider range of hardness distribution occurred in specimens that underwent treatment at higher austenitizing temperatures. The wider Vickers hardness distribution reflects non-uniform precipitation in each ferrite grain. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:145 / 154
页数:10
相关论文
共 50 条
  • [21] The effect of high temperature deformation on the austenite reversion transformation and η-Ni 3 Ti precipitation behavior in a Ti-Mo maraging steel
    Chen, Chih-Yuan
    Chiang, Iting
    Kang, Yung-Chang
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2025, 34 : 1495 - 1508
  • [22] Effect of carbide precipitation on strain-hardening behavior and deformation mechanism of metastable austenitic stainless steel after repetitive cold rolling and reversion annealing
    He, Y. M.
    Wang, Y. H.
    Guo, K.
    Wang, T. S.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2017, 708 : 248 - 253
  • [23] Microstructure Evolution of Stainless Steel at High Strain Rate and High Temperature During Plastic Deformation
    Cui, Gangwei
    Hu, Jincan
    Fan, Yihang
    Hao, Zhaopeng
    JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2025,
  • [24] Effect of Rolling on Microstructure Evolution and Plastic Deformation Behavior of A473M Martensitic Stainless Steel
    Wang, Fengzhen
    Zhang, Chunhua
    Wang, Zheying
    Wu, Chenliang
    Zhang, Song
    Zhang, Dongxue
    STEEL RESEARCH INTERNATIONAL, 2022, 93 (11)
  • [25] Effect of temperature and strain rate on deformation behavior in metallic glassy films
    Cao, Q. P.
    Ma, Y.
    Wang, C.
    Wang, X. D.
    Jiang, J. Z.
    THIN SOLID FILMS, 2014, 561 : 60 - 69
  • [26] Effect of Temperature and Strain Rate on Deformation Behavior of Invar 36 Alloy
    Li Xifeng
    Chen Nannan
    Li Jiaojiao
    He Xueting
    Liu Hongbing
    Zheng Xingwei
    Chen Jun
    ACTA METALLURGICA SINICA, 2017, 53 (08) : 968 - 974
  • [27] Effect of hot deformation and Nb precipitation on continuous cooling transformation of a high-Nb steel
    Qiao, G-Y.
    Cao, Y-B.
    Liao, B.
    Xiao, F-R.
    IRONMAKING & STEELMAKING, 2017, 44 (05) : 359 - 367
  • [28] Effect of vanadium microalloying on the deformation behavior and strain hardening of a medium Mn steel
    Liu, X.
    Huang, L. K.
    Song, K. X.
    Liu, F.
    INTERNATIONAL JOURNAL OF PLASTICITY, 2025, 186
  • [29] Effect of Plastic Deformation on Hydrogen Diffusion Behavior of Martensitic Steel in Hydrogen Absorption Environment
    Kim, Hye-Jin
    Jung, Hyun-Yeong
    Kwon, Tae-Woo
    Chung, Yoo-Dong
    MATERIALS TRANSACTIONS, 2019, 60 (08) : 1614 - 1623
  • [30] Adverse effect of niobium and boron on hot deformation behavior of sulfur-containing steel
    He, Guo-ning
    Wan, Shi-qi
    Jiang, Bo
    Zhang, Chao-lei
    Liu, Ya-zheng
    Wu, Chun-jing
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2024, 31 (01) : 252 - 263