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
GH864合金涡轮盘锻造过程中微观组织的数值模拟
英文标题:Numerical simulation of microstructure evolution during GH864 alloy disc forging
作者:姚志浩 王秋雨 张麦仓 董建新 
单位:北京科技大学 
关键词:GH864高温合金 锻造 微观组织演变 数值模拟 变形参数 
分类号:TG316.3
出版年,卷(期):页码:2011,36(3):1-7
摘要:

为了预测GH864合金Φ1250mm涡轮盘锻造过程中微观组织的演变规律,将微观组织模型加入到模拟软件MSC Super-form中,实现了高温合金塑性变形传热微观组织演变的耦合。研究了不同变形工艺参数对涡轮盘组织分布的影响,包括初始变形温度、变形速率、模具预热温度、摩擦系数及保温措施等的影响。结果表明:实际Φ1250mm涡轮盘试样环的组织分布情况与模拟结果相一致;对锻件添加包套、适当提高模具预热温度、使用具有良好润滑作用的润滑剂、适当提高变形速率均可使晶粒组织更加均匀细小。
 

In order to predict the evolution of microstructure in GH864 superalloy for Φ1250mm deformation disc, numerical simulation for the microstructure evolution of GH864 alloy disc was implemented by MSC.Super-form software, then the coupling between thermo-mechanical and microstructure evolution was realized. Meanwhile, the method was used to predict the influence of various deformation parameters, such as initial deformation temperature, strain rate, mould preheating temperature, frication coefficient and insulation measures and so on. The results show that the numerical simulation results are consistent with the actual results whose microstructures are researched from Φ1250mm sample ring. The microstructures could be optimized by adding insulation measures of forgings, increasing mould preheating temperature, using good lubrication lubricant and increasing deformation rate.

基金项目:
国家自然科学基金资助项目(51071017)
作者简介:
参考文献:


[1]姚志浩, 董建新, 张麦仓, 等, GH864合金显微组织与力学性能的关联性[J]. 稀有金属材料与工程,2010, 39(9): 1565-1570.
[2]Mandy L Brogdon,Andrew H Rosenberger. Evaluation of the influence of grain structure on the fatigue variablity of Waspaloy[A]. Eleventh International Symposium on Superalloys[C]. Rennsylvania,2008.
[3]Tokoro K, Wikstrom N P, Ojo O A, et al. Variation in diffusion-induced solidification rate of liquated Ni-Cr-B insert during TLP bonding of Waspaloy superalloy[J]. Materials Science and Engineering, 2008, 477: 311-318.
[4]Keh-Minn Chang, Xingbo Liu. Effect of γ′ content on the mechanical behavior of the Waspaloy alloy system[J]. Materials Science and Engineering A, 2001, 308: 1-8.
[5]Kelekanjeri V, Siva Kumar G, Gerhardt Rosario A. Characterization of mirostructure fluctuations in Waspaloy exposed to 760℃ for times up to 2500h[J]. Electrochimica Acta, 2006, 51:1873-1880.
[6]Karhausen K, Kopp R, De Souza M M. Numerical simulation method for designing thermomechanical treatments, illustrated by bar rolling[J]. Scandinavian Journal of Metallurgy, 1991, 20(6):351-363.
[7]Shen G S, Semiatin S L, Shivpuri R. Modeling microstructural development during the forging of Waspaloy[J]. Metallurgical and Materials Transactions A, 1995, 26A:1795-1803.
[8]Hu Z M, Brooks J W, Dean T A. Experimental and theoretical analysis of deformation and microstructural evolution in the hot-die forging of Titanium alloy aerofoil sections[J]. Journal of Materials Processing Technology,1999, 88:251-265.
[9]李俊. 热锻成型工件的微观组织模拟[J]. 塑性工程学报, 1999, 6(2):8-12.
[10]《中国航空材料手册》编辑委员会.中国航空材料手册[M].北京:中国标准出版社,2001.

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