期刊文献+

Hot deformation behavior of medium carbon V-N microalloyed steel

Hot deformation behavior of medium carbon V-N microalloyed steel
下载PDF
导出
摘要 Processing maps for a medium carbon V-N microalloyed steel(designated as VN steel) and a medium carbon V-N bared steel(designated as Non-VN steel) were developed to study the hot deformation behavior and the influence of vanadium and nitrogen, in the temperature range of 750-1 100 ℃ and strain rate range of 0.005-30 s-1. Experimental results show that the processing map for the VN steel exhibits two dynamic recrystallization and three instability domains, while that for the Non-VN steel has one dynamic recrystallization and three instability domains. The instability domains of VN steel are larger than those of the Non-VN steel, and the VN steel is easier to be unstable when being hot deformed at high temperature and high stain rate. The addition and precipitation of vanadium and nitrogen can hinder the dynamic recrystallization. Compared with the Non-VN steel, the VN steel has higher dynamic recrystallization critical strain and the corresponding stress. Processing maps for a medium carbon V-N microalloyed steel(designated as VN steel) and a medium carbon V-N bared steel(designated as Non-VN steel) were developed to study the hot deformation behavior and the influence of vanadium and nitrogen, in the temperature range of 750-1 100 ℃ and strain rate range of 0.005-30 s^- 1. Experimental results show that the processing map for the VN steel exhibits two dynamic recrystallization and three instability domains, while that for the Non-VN steel has one dynamic recrystallization and three instability domains. The instability domains of VN steel are larger than those of the Non-VN steel, and the VN steel is easier to be unstable when being hot deformed at high temperature and high stain rate. The addition and precipitation of vanadium and nitrogen can hinder the dynamic recrystallization. Compared with the Non-VN steel, the VN steel has higher dynamic recrystallization critical strain and the corresponding stress.
出处 《中国有色金属学会会刊:英文版》 EI CSCD 2009年第6期1389-1394,共6页 Transactions of Nonferrous Metals Society of China
基金 Project supported by Vanadium International Technical Committee(VANITEC)
关键词 钒微合金钢 热变形行为 中碳 动态再结晶 高应变速率 研究开发 临界应变 不稳定 medium carbon V-N microalloyed steel hot deformation processing map dynamic recrystallization
  • 相关文献

参考文献1

二级参考文献11

  • 1[1]Westengen H K. Magnesium die casting: from ingots to automotive parts[J]. Light Metal Age, 2000, 58(3-4): 44-52.
  • 2[2]Dwain M, Magers A. Global review of magnesium parts in automobiles[J]. Light Metal Age, 1996, 54(9-10): 60-63.
  • 3[3]Luo A, Pekguleryuz M O. Review cast magnesium alloys for elevated temperature applications[J]. Journal of Materials Science, 1994, 29(20): 5259-5271.
  • 4[4]Avedesian M M, Baker H. ASM Specialty Handbook-Magnesium and Magnesium Alloys[M]. USA: ASM International, 1999: 1-30.
  • 5[5]Wiley J. Magnesium and its Alloys[M]. USA: Sons Inc, 1960: 177-180.
  • 6[6]Kubota K, Mabuchi M, Higashi K. Review processing and mechanical properties of fine-grained magnesium alloys[J]. Journal of Materials Science, 1999, 34(10): 4311-4320.
  • 7[7]Kojima Y. Platform science and technology for advanced magnesium alloys[J]. Materials Science Forum, 2000, 350-351: 3-18.
  • 8[8]Mabuch M, Nakamura M, Ameyama K. Superplastic behavior of magnesium alloy processed by ECAE[J]. Materials Science Forum, 1999, 304-306: 67-72.
  • 9[9]Watanabe H, Mukai T, Higashi K. Low temperature superplastic behavior in ZK60 magnesium alloy[J]. Materials Science Forum, 1999, 304-306: 303-308.
  • 10[10]Watanabe H, Tsutsui H, Mukai T, et al. Superplastic behavior in commercial wrought magnesium alloys[J]. Materials Science Forum, 2000, 350-351: 171-176.

共引文献122

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部