OALib Journal期刊
ISSN: 2333-9721
费用:99美元
|
|
|
连续柱状晶CuAlNi合金无模拉拔过程中的组织性能演变
DOI: 10.3724/SP.J.1037.2012.00187, PP. 867-874
Keywords: Cu-Al-Ni合金,连续柱状晶,无模拉拔,动态再结晶,组织性能
Abstract:
在进料速率0.5mm/s,冷热源距离15mm保持不变,拉拔速率0.8-1.1mm/s,变形温度650-900℃的条件下,对连续柱状晶组织Cu-14.0%Al-3.8%Ni(质量分数)合金线材进行了无模拉拔实验,研究了无模拉拔工艺与合金显微组织和力学性能的关系,并对变形后合金组织性能演变的机理进行了探讨.结果表明平直晶界连续柱状晶合金线材经无模拉拔变形后,可形成平直晶界和锯齿状晶界连续柱状晶、不完全动态再结晶和完全动态再结晶4种微观组织.在变形温度650℃,拉拔速率0.8-0.9mm/s的范围内,变形后合金仍然保持平直晶界连续柱状晶组织;随着变形温度和拉拔速率的提高,连续柱状晶的平直晶界向锯齿状晶界转变.当拉拔速率为0.9mm/s,变形温度上升至850℃时,合金呈现出明显的不完全动态再结晶的组织特征,即原始柱状晶粒沿变形方向拉长变细,在部分锯齿状晶界处有细小的动态再结晶晶粒产生;继续升高温度至900℃,合金发生完全动态再结晶,大量等轴、尺寸较大的动态再结晶晶粒完全取代了变形的柱状晶粒.拉拔变形后合金线材的抗拉强度随着变形温度的升高先小幅度增加然后显著降低,而伸长率则单调降低.
References
[1] | Cai L S, Yu Y Q, Yin Z H, Wang D F, Li W G. Heat Treat Met, 2006; 31: 53
|
[2] | (蔡莲淑, 余业球, 尹占华, 王德芳, 黎沃光. 金属热处理, 2006; 31: 53)
|
[3] | Liu X F, Li W H, Xie J X. Chin J Nonferrous Met, 2008; 18: 1248
|
[4] | (刘雪峰, 李卫河, 谢建新. 中国有色金属学报, 2008; 18: 1248)
|
[5] | Zhang H, Xie J X, Wang Z D. J Univ Sci Technol Beijing, 2004; 11: 240
|
[6] | Li Y G, Quick N R, Kar A. J Mater Process Technol, 2002; 123: 451
|
[7] | Furushima T, Manabe K. J Mater Process Technol, 2007; 187-188: 236
|
[8] | Wang Z T, Zhang S H, Xu Y, Luan G F, Bai G R. J Mater Process Technol, 2002; 120: 90
|
[9] | Carolan R, Tiernan P. J Mater Process Technol, 2009; 209: 3335
|
[10] | Furushima T, Manabe K. J Mater Process Technol, 2008; 201: 123
|
[11] | Naughton M D, Tiernan P. J Mater Process Technol, 2007; 191: 310
|
[12] | Li Y G, Nathaniel R Q, Aravinda K. Mater Sci Eng, 2003; A358: 59
|
[13] | Tiernan P, Hillery M T. J Mater Process Technol, 2004; 155-156: 1178
|
[14] | Liu X F, Wu Y H, Xie J X. Sci Chin, 2009; 52E: 2232
|
[15] | He Y. PhD Thesis, University of Science and Technology Beijing, 2011
|
[16] | (何勇. 北京科技大学博士学位论文, 2011)
|
[17] | Wang Z, Liu X F, Xie J X. Prog Nat Sci-Mater Int, 2011; 21: 368
|
[18] | Krishnan R V, Delaey L, Tas H, Warlimont H. J Mater Sci, 1974; 9: 1536
|
[19] | Zhou Z Q, Yue X L, Huo D P. Ordnance Mater Sci Eng, 1998; 21: 3
|
[20] | (周自强, 岳雪兰, 霍登平. 兵器材料科学与工程, 1998; 21: 3)
|
[21] | Gastien R, Corbellani C E, Alvarez Villar H N, Sade M, Lovely F C. Mater Sci Eng, 2003; A349: 191
|
[22] | Chen G L, Lin J P. Basis of Physical Metallurgy of Ordered Intermetallic Compound Materials. Beijing: Metallurgy Industry Press, 1999: 251
|
[23] | (陈国良, 林均品. 有序金属间化合物结构材料物理金属学基础. 北京: 冶金工业出版社, 1999: 251)
|
[24] | Lovey F C, Torra V. Prog Mater Sci, 1999; 44: 189
|
[25] | Hua K F. Micro-theories of Metal Mechanical Properties. Beijing: Science Press, 1983: 158
|
[26] | (哈宽富. 金属力学性质的微观理论. 北京: 科学出版社, 1983: 158)
|
[27] | Zhu H, Matsuda J, Maruyama K. Mater Sci Eng, 2005; A397: 58
|
[28] | Liu T Y, Robinson J S, Mccarthy M A. J Mater Process Technol, 2004; 153-154: 185
|
[29] | Motoyasu G, Kaneko M, Soda H, Mclean A. Metall Mater Trans, 2001; 32A: 585
|
Full-Text
|
|
Contact Us
service@oalib.com QQ:3279437679 
WhatsApp +8615387084133
|
|