微观组织演变对超高强耐磨钢板力学性能的影响

  • 巨彪 ,
  • 武会宾 ,
  • 唐荻 ,
  • 潘学福
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  • 北京科技大学高效轧制国家工程研究中心, 北京 100083
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巨彪, 男, 1988年生, 博士生

收稿日期: 2013-11-27

  修回日期: 2013-11-27

  网络出版日期: 2014-09-25

基金资助

*国家高技术研究发展计划资助项目2012AA03A508

EFFECT OF MICROSTRUCTURE EVOLUTION ON MECHANICAL PROPERTIES OF ULTRA-HIGH STRENGTH WEAR RESISTANCE STEEL

  • Biao JU ,
  • Huibin WU ,
  • Di TANG ,
  • Xuefu PAN
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  • National Engineering Research Center for Advanced Rolling Technology, University of Science and Technology Beijing, Beijing 100083

Received date: 2013-11-27

  Revised date: 2013-11-27

  Online published: 2014-09-25

Supported by

Supported by High Technology Research and Development Program of China (No.2012AA03A508)

摘要

对一种含Nb中碳合金钢进行了两阶段控制轧制和随后的水冷-过冷奥氏体低温弛豫-空冷控制冷却处理(TMCP), 之后加热至900 ℃保温30 min水淬, 再对淬火态的实验钢进行200~400 ℃温度区间、40 min的回火处理(QT), 结合力学性能测试结果, 利用OM, SEM, TEM和XRD对处于不同处理状态的实验钢进行显微组织表征, 研究微观组织演变对力学性能的影响. 结果表明, TMCP状态的实验钢综合力学性能优于QT态, 这得益于TMCP态保留了轧制细化的原始奥氏体组织, 使最终组织细化, 空冷马氏体相变过程发生缓慢, 利于过冷奥氏体的稳定, 从而获得残余奥氏体含量较高的室温组织. 各状态下实验钢微观组织以板条马氏体为主, 同时包含少量相变孪晶.

本文引用格式

巨彪 , 武会宾 , 唐荻 , 潘学福 . 微观组织演变对超高强耐磨钢板力学性能的影响[J]. 金属学报, 2014 , 50(9) : 1055 -1062 . DOI: 10.11900/0412.1961.2013.00775

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