[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, 等. 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,等. 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,等. 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,等. 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 H,Huang 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, 等. 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.
|