Principle of the Continuous Variable Cross-Section Recycled Extrusion (CVCE) Process

Article Preview

Abstract:

A kind of severe deformation method for refined grain materials named continuous variable cross-section recycled extrusion (CVCE) was proposed. The composition structure and working principle of processing were introduced. First, the cylinder specimen was extruded to circular cone and then the circular cone specimen was compressed into columned one. After that, the specimen was rotated by 180° and repeated the forward procedure. All of procedures mentioned above constitute a cycle. The whole process is repeated again and again. The process can introduce ultra-high plastic strain without any geometrical change. The process has been applied to commercial aluminum (1100), Mg alloy. After several cycles of CVCE, bulk materials with sub-micron grain structure were successfully obtained. The average grain size of AZ31 magnesium alloy is refined from 25μm to 3μm after six cycles and the tensile elongation were improved dramatically.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 418-420)

Pages:

1400-1404

Citation:

Online since:

December 2011

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] R. Z. Valiev, N. A. Krasilnikov, N. K. Tsenev. Mater. Sci. Eng. A, 137(1991) p.35.

Google Scholar

[2] C. Z. Xu, Q. J. Wang, M. S. Zheng. Mater. Sci. Eng. A, 475(2008), p.249.

Google Scholar

[3] K. Megumi, A. Byungmin and T. G. Langdon, Mater. Sci. Eng. A, 527(2010), p.7008.

Google Scholar

[4] B. F. Roberto and T.G. Langdon. Materials Science and Engineering: A, 528(2011), p.4500.

Google Scholar

[5] X.Y. Yang, Z.Y. Sun, J. Xing. Tran. of Trans. Nonferrous Met. Soc. China, 18(2008), p.s200.

Google Scholar

[6] D. Orlov, Y. Beygelzimer, S. Synkov, V. Varyukhin, Horita. Mater. Sci. Eng. A, 519 (2009), p.105.

Google Scholar

[7] H. S. Chu, K. S. Liu, J. W. Yeh..Scripta Material, 45(2001),p.541.

Google Scholar

[8] V. Rajinikanth, G. Arora, N. Narasaiah. Materials Letters, 62(2008), p.301.

Google Scholar

[9] M. Y. Zhan, Y. Y. Li and W. P. Chen. Nonferrous Met. Soc. China , 18 (2008), p.309.

Google Scholar

[10] B. M. Darras, M. K. Khraisheh, F. K. Abu-farha. Journal of Materials Processing Technology, 191(2007), p.77.

Google Scholar

[11] C. R. Liu, K. S. Wang, Q. J. Wang, China. ZL 200610041960.8[P], 2008.

Google Scholar

[12] Y.T. Zhu, J.Y. Huang, J. Gubicza, Journal of Materials Research, 18(2003),p.1908.

Google Scholar

[13] H. K. Kim, W. J. Kim. Materials Science and Engineering A, 385(2004), p.300.

Google Scholar

[14] T. Mukai, M. Yamanoi, H. Watanabe, K. Higashi, Scripta Materialia, 45 (2001), p.89.

Google Scholar

[15] W. J.Kim, S. I. Hong, Y. S. Kim, S. H. Min, H. T. Jeong, Acta Mater. 51(2003), p.3293.

Google Scholar