Development and validation of a processing map for Aermet100 steel

被引:37
|
作者
Ji, Guoliang [1 ,3 ]
Li, Fuguo [1 ]
Li, Qinghua [1 ]
Li, Huiqu [2 ]
Li, Zhi [2 ]
机构
[1] NW Polytech Univ, Sch Mat Sci & Engn, Xian 710072, Peoples R China
[2] Beijing Inst Aeronaut Mat, Beijing 100095, Peoples R China
[3] Henan Polytech Univ, Sch Mat Sci & Engn, Jiaozuo 454000, Peoples R China
关键词
Aermet100; Processing map; Dynamic recrystallization; Shear bands; HOT DEFORMATION; BEHAVIOR; WORKING; ALLOY; SHEAR;
D O I
10.1016/j.msea.2009.09.062
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Using the flow stress data obtained from the compression tests in the temperature ranges of 800-1200 degrees C and at strain rate ranges of 0.01-50 s(-1), the processing map of Aermet100 steel was developed based on a simple instability condition applicable to a general flow stress versus strain rate curve at any strain and temperature. Deformation mechanisms in the stable and unstable regimes were verified with the microstructure observations. The optimum hot processing windows of Aermet100 steel are at temperature ranges of 1025-1200 degrees C and at strain rate ranges of 0.03-15 s(-1), in which dynamic recrystallization occurs with a peak efficiency of power dissipation of 38%. The instability regimes I and II occur at low temperature ranges of 800-975 degrees C, and at strain rate ranges of 0.1-6 s(-1) and 4.5-33 s(-1), respectively. While the instability regime III occurs at high temperature ranges of 950-1200 degrees C and at high strain rate ranges of 15-50 s(-1). These instability regimes, whose microstructural manifestations such as cracks, shear bands and twin kink bands are detrimental to the mechanical properties of components, need to be avoided during hot processing of Aermet100 steel. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:1165 / 1171
页数:7
相关论文
共 50 条
  • [21] Analytical modeling of residual stresses in laser-assisted milling AerMet100 steel
    Zeng, Haohao
    Hu, Xiangtao
    Yang, Dong
    OPTICS AND LASER TECHNOLOGY, 2023, 158
  • [22] Analysis of the surface residual stress in grinding Aermet100
    Xu, Y. Q.
    Zhang, T.
    Bai, Y. M.
    PHYSICAL AND NUMERICAL SIMULATION OF MATERIAL PROCESSING VI, PTS 1 AND 2, 2012, 704-705 : 318 - 324
  • [23] Microstructure and properties of micro-arc oxidation ceramic films on AerMet100 steel
    Wang, WeiZhan
    Feng, ShunShan
    Li, ZhongMing
    Chen, ZhiGang
    Zhao, TaiYong
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2020, 9 (03): : 6014 - 6027
  • [24] 3D FEM simulation of hot extrusion process of AerMet100 Steel
    Chen, Jun-Feng
    Yan, Mu-Fu
    Wang, Xiang-Rong
    Cailiao Rechuli Xuebao/Transactions of Materials and Heat Treatment, 2007, 28 (SUPPL.): : 367 - 370
  • [25] Prediction of the hot deformation behavior for Aermet100 steel using an artificial neural network
    Ji, Guoliang
    Li, Fuguo
    Li, Qinghua
    Li, Huiqu
    Li, Zhi
    COMPUTATIONAL MATERIALS SCIENCE, 2010, 48 (03) : 626 - 632
  • [26] Microstructures and tensile properties of laser cladded AerMet100 steel coating on 300M steel
    Jian Liu
    Jia Li
    Xu Cheng
    Huaming Wang
    Journal of Materials Science & Technology, 2018, 34 (04) : 643 - 652
  • [27] Aermet100钢热变形行为研究
    白克非
    中国金属通报, 2019, (08) : 211 - 213+215
  • [28] AerMet100钢的研究与发展
    李志
    赵振业
    航空材料学报, 2006, (03) : 265 - 270
  • [29] Effect of Hot Isostatic Pressing on Fatigue Properties of Laser Melting Deposited AerMet100 Steel
    Cheng Hao
    Liu Dong
    Tang Hai-bo
    Zhang Shu-quan
    Ran Xian-zhe
    Wang Hua-ming
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2013, 20 (11) : 79 - 84
  • [30] Microstructural changes and mechanical properties of AerMet100 steel surface-treated by plasma nitriding
    Chen, Baofeng
    Yan, Fuyao
    You, Yuan
    Yan, M. F.
    Zhang, Yanxiang
    Xu, Yueming
    SURFACE & COATINGS TECHNOLOGY, 2020, 403