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
局部锻造和形变热处理工艺对高锰钢辙叉组织及 力学性能的影响
英文标题:Influence of local forging and deformation heat treatment process on microstructure and mechanical properties for Hadfield steel frogs
作者:汤铁兵 
单位:中铁山桥集团有限公司 
关键词:高锰钢辙叉 局部锻造 形变热处理 微观组织 力学性能 
分类号:TG316.2
出版年,卷(期):页码:2022,47(9):211-217
摘要:

 利用铸造技术将高锰钢辙叉在服役过程中最易发生失效位置处的心轨和翼轨加高30 mm,并通过高温形变热处理工艺对辙叉加高区域进行压下变形,使其与未加高区域平齐。随后对高锰钢辙叉分别进行立即水韧、回炉于1100 ℃保温7 min后水韧和回炉于1100 ℃保温25 min后水韧3种不同的工艺处理。对3种不同状态的辙叉的变形区和未变形区组织进行观察,并对其相应力学性能进行测试,结果表明:经局部锻造和形变热处理后的辙叉的变形区的组织明显细化,且力学性能显著提高。在研究的3种变形状态的高锰钢辙叉中,变形后回炉于1100 ℃保温7 min后水韧的辙叉的变形区顶部性能的提高幅度最明显,其抗拉强度达到986 MPa,伸长率达到51.1%,较辙叉的未变形区域分别提高了34.1%46.8%

 The core rail and wing rail at the position where the Hadfield steel frog was most likely to fail during the service process were increased by 30 mm by casting technology, and the elevated area of frog was depressed and deformed by the high temperature deformation heat treatment process to make it match the height of the unelevated area. Then, the Hadfield steel frogs were treated by three different processes: immediate water toughening, water toughening after returning to furnace and holding at 1100 for 7 min, and water toughening after returning to furnace and holding at 1100 for 25 min. Furthermore, the microstructures for deformed and undeformed areas of the frogs in the three different states were observed, and their corresponding mechanical properties were tested. Results show that the microstructure of the deformed areas for frogsafter local forging and deformation heat treatment is obviously refined, and the mechanical properties are significantly improved. For the studied hadfield steel frogs in the three deformation states, the frogs with water toughening after returing to furnace and holding at 1100 for 7 min after deformation have the most obvious performance improvement at the top of the deformed area with the tensile strength of 986 MPa and the elongation of 51.1%. Compared with the undeformed area for frogs, they are increased by 34.1% and 46.8%, respectively.

基金项目:
河北省重点研发计划资助项目(19211018D,20311002D)
作者简介:
汤铁兵(1978-),男,学士,高级工程师 E-mail:11915179@qq.com
参考文献:

 [1]Zhang F C, Lyu B, Wang T S, et al. Explosion hardening of Hadfield steel crossing[J]. Materials Science and Technology, 2010, 26(2): 223-229.


 


[2]张福成. 辙叉钢及其热加工技术[M]. 北京:机械工业出版社, 2011.


 


Zhang F C. Frog Steels and Hot Working Technologies [M]. Beijing:China Machine Press, 2011.


 


[3]靳晋贵. 论高锰钢现状及今后发展[J]. 机械管理开发, 2011,(2): 21-22.


 


Jin J G. The current situation and future development of high-manganese steel[J]. Mechanical Management and Development, 2011,(2): 21-22.


 


[4]马兰英. 高锰钢辙叉局部缩孔缺陷分析与解决措施[J]. 铸造技术, 2018,(1): 91-92.


 


Ma L Y. Analysis and resolution of local shrinkage defect of high manganese steel frog[J]. Foundry Technology, 2018,(1): 91-92.


 


[5]王琳, 马华, 陈晨, . 高锰铸钢的高温形变热处理及其组织和力学性能[J]. 上海金属, 2019, 4 (41): 40-44.


 


Wang L, Ma H, Chen C, et al. High-temperature thermo-mechanical treatment and resulting microstructures and mechanical properties for high-manganese cast steel[J]. Shanghai Metals, 2019, 4 (41): 40-44.


 


[6]张福成, 吕博, 厚如军,. 锻造(轧制)耐磨奥氏体高锰钢及其制造工艺[P]. 中国: CN200710062152.4, 2007-11-21.


 


Zhang F C, Lyu B,Hou R J, et al. Forged (rolled) wear-resistant austenitic high manganese steel and its manufacturing process[P].China: CN200710062152.4, 2007-11-21.


 


[7]张福成, 王琳, 陈晨,. 一种对铸造高锰钢辙叉进行局部形变热处理方法[P]. 中国: CN201810109618.X, 2018-07-06.


 


Zhang F C, Wang L, Chen C, et al. A kind of local deformation heat treatment method for cast high manganese steel frog[P].China: CN201810109618.X, 2018-07-06.


 


[8]陈晨, 杨志南. 重载铁路铸造高锰钢辙叉制造技术[J]. 海峡科技与产业, 2018, 232(Z1): 89-91.


 


Chen C, Yang Z N. Manufacturing technology of cast high manganese steel frog for heavy haul railway[J]. Technology and Industry Across the Straits, 2018, 232(Z1): 89-91.


 


[9]卢金文, 葛鹏, 赵永庆, 等.高温形变热处理对Ti-1300合金组织及硬度的影响[J].稀有金属材料与工程, 2015, 44(3): 676-680.


 


Lu J W, Ge P, Zhao Y Q, et al. Effect of high temperature thermomechanical treatment on microstructure and hardness of Ti-1300 titanium alloy[J]. Rare Metal Materials and Engineering,2015, 44(3): 676-680.


 


[10]周士猛, 程兴旺, 张由景, 等.新型超高强度钢的高温形变热处理[J].材料工程, 2016, 44(5): 37-41.


 


Zhou S M, Cheng X W, Zhang Y J, et al. High temperature thermo-mechanical treatment of novel ultra-high-strength steel[J]. Journal of Materials Engineering, 2016, 44(5): 37-41.


 


[11]李建军, 徐佳辉,黄亮,. 铝锂合金形变热处理工艺研究进展[J]. 锻压技术, 2021, 46(11): 1-10.


 


Li J J, Xu J HHuang L, et al. Research progress on thermomechanical treatment process for Al-Li alloy[J]. Forging & Stamping Technology, 2021, 46(11): 1-10.


 


[12]唐海兵, 魏科, 钟锐, . 航空框梁构件等温局部锻造成形的材料跨变形区转移规律研究[J]. 锻压技术, 2021, 46(12): 6-12.


 


Tang H B, Wei K, Zhong R, et al. Study on laws of trans-regional material transfer for aircraft frame beam component by isothermal local forging[J]. Forging & Stamping Technology, 2021, 46(12): 6-12.


 


[13]Liu D, Liu Z, Wang E. Effect of rolling reduction on microstructure, texture, mechanical properties and mechanical anisotropy of AZ31 magnesium alloys[J]. Materials Science & Engineering A, 2014, 612(9): 208-213.

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