FEM simulation and experimental verification of temperature field and phase transformation in deep cryogenic treatment

被引:11
作者
Li Jun-wan [1 ]
Tang Lei-lei [1 ]
Li Shao-hong [2 ]
Wu Xiao-chun [1 ]
机构
[1] Shanghai Univ, Sch Mat Sci & Engn, Shanghai 200072, Peoples R China
[2] Kunming Univ Sci & Technol, Sch Mat Sci & Engn, Kunming 650093, Peoples R China
基金
中国国家自然科学基金;
关键词
deep cryogenic treatment; boiling heat transfer coefficient; finite element method; phase transformation; cold work tool steel; QUENCHING PROCESS; STEEL; MICROSTRUCTURE;
D O I
10.1016/S1003-6326(11)61480-5
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Combining with the low temperature material properties and the boiling heat transfer coefficient of specimen immersed in the liquid nitrogen, a numerical model based on metallo-thermo-mechanical couple theory was established to reproduce the deep cryogenic treatment (DCT) process of a newly developed cold work die steel Cr8Mo2SiV (SDC99). Moreover, an experimental setup for rapid temperature measurement was designed to validate the simulation results. The investigation suggests that the differences in temperature and cooling rate between the surface and core of specimen are very significant. However, it should be emphasized that the acute temperature and cooling rate changes during DCT are mainly concentrated on the specimen surface region about 1/3 of the sample thickness. Subjected to DCT, the retained austenite of quenched specimen continues to transform to martensite and finally its phase volume fraction reduces to 2.3%. The predicted results are coincident well with the experimental data, which demonstrates that the numerical model employed in this study can accurately capture the variation characteristics of temperature and microstructure fields during DCT and provide a theoretical guidance for making the reasonable DCT procedure.
引用
收藏
页码:2421 / 2430
页数:10
相关论文
共 21 条
  • [1] Kinetics of phase change I - General theory
    Avrami, M
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1939, 7 (12) : 1103 - 1112
  • [2] BARRON R F, 1999, CRYGENIC HEAT TRANSF
  • [3] BROMLEY LA, 1950, CHEM ENG PROG, V46, P221
  • [4] BUCHMAYR B., 1990, J HEAT TREATING, P127
  • [5] COLLINS D N, 1995, HEAT TREATMENT METAL, V23, P40
  • [6] Development and implementation of CAE system ''HEARTS'' for heat treatment simulation based on metallo-thermo-mechanics
    Inoue, T
    Arimoto, K
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 1997, 6 (01) : 51 - 60
  • [7] Measurement of boiling heat transfer coefficient in liquid nitrogen bath by inverse heat conduction method
    Jin, Tao
    Hong, Jian-ping
    Zheng, Hao
    Tang, Ke
    Gan, Zhi-hua
    [J]. JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2009, 10 (05): : 691 - 696
  • [8] Cryogenic Treatment of Tool Materials: A Review
    Kalsi, Nirmal S.
    Sehgal, Rakesh
    Sharma, Vishal S.
    [J]. MATERIALS AND MANUFACTURING PROCESSES, 2010, 25 (10) : 1077 - 1100
  • [9] Finite element method based simulation of stress-strain field in the quenching process
    Li, Huiping
    Zhao, Guoqun
    He, Lianfang
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 478 (1-2): : 276 - 290
  • [10] Influence of deep cryogenic treatment on microstructure and evaluation by internal friction of a tool steel
    Li, Shaohong
    Deng, Lihui
    Wu, Xiaochun
    Min, Yong'an
    Wang, Hongbin
    [J]. CRYOGENICS, 2010, 50 (11-12) : 754 - 758