期刊文献+

低频电磁铸造Al-Zn-Mg-Cu-Zr合金 被引量:1

Low Frequency Electromagnetic Casting Al-Zn-Mg-Cu-Zr Alloy
在线阅读 下载PDF
导出
摘要 采用低频电磁LFEC和常规DC铸造技术 ,半连续铸造了三种新的Al Zn Mg Cu Zr合金 ,考察了两种技术铸造组织、锭坯表面状况、元素晶内固溶度和力学性能的区别。结果表明 ,低频电磁铸造组织均匀细小等轴 ,呈细小的蔷薇形和球形 ,平均晶粒尺寸为 2 0~ 5 0 μm ;锭坯表面无冷隔和少偏析瘤 ;合金元素在晶粒内的含量增加 ,Zn的相对溶质固溶百分数为 75 %~ 65 % ,Mg为 72 %~ 66% ,Cu为 4 5 %~ 4 0 % ;铸态力学性能显著提高 ,拉伸强度极限为 330~ 35 0MPa ,延伸率为 0 8%~ 1 2 %。 Three new Al-Zn-Mg-Cu-Zr alloys were semi-continuously cast by Low Frequency Electromagnetic Casting (LFEC) and by conventional Direct Chilling Casting (DC) without electromagnetic field. The effects of low frequency electromagnetic field on as-cast microstructures, surface quality, intracrytalline element solubility and mechanical properties were investigated. The results show that microstructures of LFEC are fine, uniform, equiaxed, rose-shaped or globular, and its average sizes are between 20~40μm; the surface of the ingots of LFEC has no cold shut and less segregation. Intracrytalline element solubility and mechanical properties of LFEC are greatly increased: the relative intracrytalline solubility of Zn, Mg and Cu are 75%~65%, 72%~66%and 45%~40% respectively. The as-cast ultimate strength is 330~350MPa and elongation is 0.8%~1.2%.
出处 《高技术通讯》 EI CAS CSCD 2003年第1期45-49,共5页 Chinese High Technology Letters
基金 86 3计划 ( 2 0 0 1AA332 0 30 )资助项目。
关键词 Al-Zn-Cu-Zr合金 低频 电磁铸造 微观组织 固溶度 Low frequency, Electromagnetic casting, Microstructure, Solubility, Al-Zn-Mg-Cu-Zr
  • 相关文献

参考文献9

  • 1Desnain P,Fautrelle Y,Meyer J L,et al.Acta Metall[].Mater.1988
  • 2Adachi H,Osamura K,Ochiai S,et al. Scripta Materialia . 2001
  • 3Kusui J,Fujii K,Yokoe K,et al. Journal of Materials Science . 1996
  • 4Wei Q,Xiong B Q,Zhang Y A,et al. Transactions of Nonferrous Metals Society of China (English Edition) . 2001
  • 5Wu Y L,Froes F H,Alvarez A,et al. Materials and Design . 1997
  • 6Vives C. Metallurgical Transactions . 1989
  • 7Vives C. Metallurgical Transactions . 1989
  • 8Shen J,Li J,Fu H. Journal of Materials Science and Technology . 2000
  • 9Fugate D W,Hoburg J F. Metallurgical Transactions . 1993

同被引文献17

  • 1张国君,刘刚,丁向东,孙军,陈康华.含有不同尺度量级第二相的高强铝合金拉伸延性模型[J].中国有色金属学报,2002,12(z1):1-10. 被引量:17
  • 2[1]Mondolfo L F. Alurninum alloys Structure and Properties [M]. London Boston:Butter Worths, 1976:425~42.8;433~441 ;516~529;595~597.
  • 3[3]J.D. Robson, P.B. Prangnell. Modelling ZrAl3 dispersoid precipitation in multicomponent aluminum alloys[J]. Materials Science and Engineering A352 (2003) :240~250.
  • 4[4]Yoshikawa, Katsuyuki, Sakamoto, et al. Crystallization of giant intermetallic compomds in 7075 alurninum alloys[J]. Journal of Japan Institute of Light Metals. 1995, (2) :76~81.
  • 5[9]Gurbuz. R, Alpay. S.P. Effect of coarse second phase particles on fatigue crack propagation of an Al- Zn- Mg-Cu alloy[J]. Scripta Metallurgica et Materialia, 1994(1): 1373~1376.
  • 6[10]Mukai, Toshiji, Hilgashi, et al. Influence of distribution of second phase particles in aluminum alloys[J]. Transactions of the Japan Society of Mechanical Engineers, 1993, (10):2350~2355.
  • 7[11]Manabu Nakai, Takehiko, etc. New aspects of development of high strength alurninurn alloys for aerospace applications[J]. Materials Science and Engineering A285 (2000): 62~68.
  • 8[14]S. ANAND, T. S. SRIVATSAN, YUEWU, et al. Processing, microstructure and fracture behaviour of a spray atomized and deposited aluminium- silicon alloy[J]. JOURNAL OF MATERIALS SCIENCE.32(1997) :2835 ~2848.
  • 9[15]Vives Charles. Electromagnetic refining of alurnuburn alloys by the CREM process. Part Ⅰ. Working principle and metallurgical results[J]. Metallurgical Transactions B. 1989,20: 623~629.
  • 10[16]Vives charles. Effects of forced electromagnetic vibrations during the solidification of aluminum alloys: Part Ⅱ. Solidification in the presence of collinear variable and stationary magnetic fields[J]. Metallurgical and Materials Transactions B. 1996,7: 457~464.

引证文献1

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部