网站首页期刊简介编委会过刊目录投稿指南广告合作征订与发行联系我们English
316LN钢ESR材料热变形行为及高温塑性本构方程
英文标题:Thermal deformation behavior and high temperature plastic constitutive equation of ESR steel 316LN
作者:任树兰 刘建生 李景丹 王瑞 段兴旺 
单位:太原科技大学 
关键词:316LN钢 ESR 热变形激活能 本构方程 动态再结晶 
分类号:TG316
出版年,卷(期):页码:2017,42(10):162-165
摘要:

为了研究铸态316LN钢ESR材料的高温变形行为,建立铸态316LN钢ESR材料高温塑性本构方程,采用Gleeble-1500D热模拟试验机对316LN钢进行等温压缩试验,研究了316LN钢ESR材料在变形温度为900~1200 ℃、应变速率为0.001~1 s-1、最大变形量为55%条件下热变形行为,并测得相应的流动应力-应变曲线。结果表明,在高变形温度、低应变速率的条件下,更有利于动态再结晶的发生。通过对试验数据进行多元线性拟合计算,得到了316LN钢的热变形激活能,建立了316LN钢ESR材料的高温塑性本构方程。

In order to study the deformation behavior and establish the plastic constitutive equation at high temperature of ascast ESR steel 316LN, the isothermal compression test of steel 316LN was conducted by Gleeble-1500D thermal simulation testing machine. Then, the thermal deformation behavior of ESR steel 316LN at deformation temperatures of 900-1200 ℃, strain rates of 0.001-1 s-1 and the maximum deformation of 55% was studied, and the corresponding flow stress and strain curves were investigated. The results show that under the conditions of high deformation temperature and low strain rate, the dynamic recrystallization is more conducive to occur. By the multiple linear regression calculation on experimental data, the hot deformation activation energy is obtained and the high temperature plastic constitutive equation of ESR steel 316LN is established.

基金项目:
太原科技大学博士启动基金项目(20142010)
作者简介:
作者简介:任树兰(1991-),女,硕士研究生,E-mail:460454187@qq.com;通讯作者:刘建生(1958-),男,博士,教授,博士生导师,E-mail:jiansliu@163.com
参考文献:

[1]潘品李, 钟约先, 马庆贤,. 大型核电主管道制造技术的发展[J]. 锻压装备与制造技术, 2011, 46(1):13-17.


Pan P LZhong Y XMa Q Xet al. Development of manufacture technology for main pipe of largesized nuclear power[J]. China Metalforming Equipment & Manufacturing Technology, 2011, 46(1):13-17.


[2]裴文娇, 郭训忠, 王文涛, . 316L奥氏体不锈钢的高温流变行为[J]. 塑性工程学报, 2014, 21(3):104-110.


Pei W J, Guo X Z,Wang W T, et al. Flow behaviors of 316L stainless steel at high temperature[J]. Journal of Plasticity Engineering, 2014, 21 (3):104-110.


[3]齐珂. 核电用钢316LN动态再结晶行为实验研究与数值模拟[D]. 上海: 上海交通大学, 2014.


Qi K. Experimental and Numerical Study on Dynamic Recrystallization of 316LN Nuclear Power Steel[D]. Shanghai: Shanghai Jiao Tong University, 2014.


[4]向大林. 大型电渣重熔值得注意的几个问题[J]. 大型铸锻件, 2011, (1): 34-42.


Xiang D L. Some problems meriting attention in large-scale ESR[J]. Heavy Casting and Forging, 2011, (1):34-42.


[5]向大林, 辜荣如. CAP1400核电厂主管道112吨电渣锭研制[J]. 中国核电, 2013, 6(2):105-110.


Xiang D L, Gu R R. Development of 112 t ESR ingot for CAP1400 main pipe[J]. China Nuclear Power, 2013, 6(2):105-110.


[6]Sellars C M, Mctegart W J. On the mechanism of hot deformation[J]. Acta Metallurgica, 1966, 14(9): 1136-1138.


[7]Jonas J J, Sellars C M, Mctegart W J. Strength and structure under hot working conditions[J]. International Materials Reviews, 1969, 14(1): 1-24.


[8]何霞, 张彦敏, 宋克兴,. Cu-0.23Be-0.84Co 合金热变形行为[J]. 塑性工程学报, 201522(2):105-110.


He X, Zhang Y M, Song K X, et al. Study on hot deformation behaviors of CuBeCo alloy[J]. Journal of Plasticity Engineering, 201522 (2):105-110.


[9]马越,刘建生. 30Cr2Ni4MoV钢动态再结晶及微观组织演变研究[J]. 锻压技术,2016413):129-133.


Ma YLiu J S. Research on dynamic recrystallization behavior and microstructure evolution of steel 30Cr2Ni4MoV [J]. Forging & Stamping Technology2016413):129-133.


[10]米丰毅, 龚雪辉, 袁武华,. Nitronic 60奥氏体不锈钢热变形行为研究[J]. 材料开发与应用, 2015, 30(3):41-46.


Mi F Y, Gong X H, Yuan W H, et al. Investigation on hot deformation behavior of Nitronic 60 austenite stainless steel[J]. Materials Development and Application, 2015, 30(3):41-46.


[11]Zener C, Hollomon J H. Effect of strain rate upon the plastic flow of steel[J]. Journal of Applied Physics, 1944,15(1):22-32.

服务与反馈:
本网站尚未开通全文下载服务】【加入收藏
《锻压技术》编辑部版权所有

中国机械工业联合会主管  中国机械总院集团北京机电研究所有限公司 中国机械工程学会主办
联系地址:北京市海淀区学清路18号 邮编:100083
电话:+86-010-82415085 传真:+86-010-62920652
E-mail: fst@263.net(稿件) dyjsjournal@163.com(广告)
京ICP备07007000号-9