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
梯度化加热调控微观组织实现变强度热冲压工艺
英文标题:Variable strength hot stamping process realized by gradient heating to regulate microstructure
作者:王义林1 方冬雨1 刘培星2 朱彬1 张宜生1 
单位:1. 华中科技大学 材料科学与工程学院   2. 山东钢铁集团日照有限公司 钢铁研究院 
关键词:变强度 高强钢 热冲压 梯度化加热 微观组织调控 
分类号:TG115.2
出版年,卷(期):页码:2021,46(9):197-203
摘要:

 开发了一种变强度热冲压工艺,可以对零件进行微观组织和力学性能调控。利用感应线圈对坯料进行梯度化加热,使局部区域奥氏体化,进而调控淬火后各区域的微观组织,从而获得变强度零件。实验以退火态及冷轧态的热冲压钢来研究该工艺,软化区组织均为珠光体+铁素体,退火态和冷轧态钢板的抗拉强度及伸长率分别为490 MPa32%940.4 MPa4.2%;高强度区均为马氏体组织,退火态和冷轧态钢板的抗拉强度及伸长率分别为1532 MPa9.1%1485.1 MPa8.4%;过渡区的硬度从高强区向软化区逐渐下降,性能基本平稳过渡。结果表明,对于两种不同供货态钢,该工艺均可通过微观组织调控的方法,实现零件的变强度分布。

 A variable-strength hot stamping process was developed to regulate the microstructures and mechanical properties of parts, and the induction coils were used to perform gradient heating of the blank to austenitize the local area, and then regulate the microstructures of each area after quenching to obtain the variable-strength parts. Furthermore, for the hot stamping steels in annealed state and cold rolled state, experiments were applied to study the process. The microstructure of softened zone is pearlite and ferrite, and the tensile strength and elongation of the annealed and cold-rolled steel sheets are 490 MPa, 32% and 940.4 MPa, 4.2%, respectively. However, the microstructure of high-strength zone is all martensite, and the tensile strength and elongation of annealed and cold-rolled steel sheets are 1532 MPa, 9.1% and 1485.1 MPa, 8.4%, respectively. But, the hardness of transition zone gradually decreases from high-strength zone to softened zone, and the performance is basically smoothly transitioned. The results show,for two kinds of steel with different supply condition, parts with variable strength distribution can be obtained by the method of microstructure regulation.

 

 

基金项目:
国家自然科学基金资助项目(U1760205);国家科技重大专项(2018ZX04023001)
作者简介:
王义林(1968-),男,博士,副教授 E-mail:wangyilin@hust.edu.cn 通信作者:朱彬(1983-),男,博士,副教授 E-mail:zhubin26@hust.edu.cn
参考文献:

 [1]刘培星. 高性能金属板料汽车结构件热成形及切割工艺研究[D]. 武汉: 华中科技大学, 2016.


 


Liu P X. Investigation on Hot Forming and Trimming Process of High-performance Steel for Automobile Structural Parts[D]. Wuhan: Huazhong University of Science & Technology, 2016.


 


[2]林建平,王立影,田浩彬,等. 超高强度钢板热冲压成形研究与进展[J]. 热加工工艺, 2008, 37(21): 140-144.


 


Lin J P, Wang L Y, Tian H B, et al. Research and progress of hot stamping of ultrahigh strength steel[J]. Hot Working Technology, 2008, 37(21): 140-144.


 


[3]王子健,刘晓龙,张宜生,等. 高强钢热冲压成形变强度工艺研究[J]. 热加工工艺, 2018, 47(13): 33-36.


 


Wang Z J, Liu X L, Zhang Y S, et al. Study on hot stamping forming technology of high strength steel with tailored properties[J]. Hot Working Technology, 2018, 47(13): 33-36.


 


[4]桂中祥,张宜生,王子健. 汽车超高强钢热冲压成形新工艺——选择性冷却[J]. 热加工工艺, 2013, 42(1): 108-113.


 


Gui Z X, Zhang Y S, Wang Z J. A new technology of hot stamping ultra-high strength automobile-selective cooling[J]. Hot Working Technology, 2013, 42(1): 108-113.


 


[5]Wang Z J, Xu Y, He W T, et al. Hot stamping of two different high strength steel with tailored properties[J]. Applied Mechanics & Materials, 2013, 395-396: 909-913.


 


[6]Wang Z J, Xu Y, Zhou M L, et al. Valuation method for effects of hot stamping parameters on tailored properties[J]. Advanced Materials Research, 2014, 1063: 202-206.


 


[7]Wang Z J, Liu P X, Xu Y, et al. Hot Stamping of high strength steel with tailored properties by two methods[J]. Procedia Engineering, 2014, 81: 1725-1730.


 


[8]Martín S D, Cock D T, García-Junceda A, et al. Effect of heating rate on reaustenitisation of low carbon niobium microalloyed steel[J]. Materials Science & Technology, 2008, 24(3): 266-272.


 


[9]Mori K, Saito S, Maki S. Warm and hot punching of ultra high strength steel sheet[J]. CIRP Annals, 2008, 57(1): 321-324.


 


[10]Zimmermann F, Sprer J, Volk W. Partial tempering of press hardened car body parts by a premixed oxygen-methane flame jet[A]. Oldenburg M, Prakash B, Steinhoff K. The 4rd International Conference on Hot Sheet Metal Forming of High-performance Steel[C]. Lulea, Sweden: Wissenschaftliche Scripten, 2013.


 


[11]Seung H, Jae D, Min S, et al. Annealing optimization to make tailored-properties of body-in-white part[A]. Oldenburg M, Prakash B, Steinhoff K. The 4rd International Conference on Hot Sheet Metal Forming of High-performance Steel[C]. Lulea, Sweden: Wissenschaftliche Scripten, 2013.


 


[12]Naderi M, Uthaisangsuk V, Prahl U, et al. A numerical and experimental investigation into hot stamping of boron alloyed heat treated steels[J]. Steel Research International, 2009, 79(2): 77-84.


 


[13]Majumdar S. Formability limit diagram of high strength steel sheet (DP590)[J]. International Journal of Mechanical Engineering Education, 2011, 1(2): 114-118.


 


[14]Vedantam K, Bajaj D, Brar N, et al. Johnson-cook strength models for mild and DP590 steels[J]. AIP Conference Proceedings, 2006, 845: 775-778.


 


[15]张淑娟. DP590冷轧汽车板成形性能评价与数值模拟[D]. 沈阳: 东北大学, 2011.


 


Zhang S J. Formability Evaluation and Numerical Simulation of Cold-rolled Automobile Sheet DP590[D]. Shenyang: Northeastern University, 2011.

服务与反馈:
文章下载】【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