Research and Development of the Porthole-Die Aluminium Alloy Extrusion Processes

Article Preview

Abstract:

The current research on the porthole-die aluminium alloy extrusion is presented here. The empirical method and simulation method are analyzed. Particularly, the Lagrangian Finite Element Method(FEM), Eulerian Finite Volume Method(FVM) and Arbitrary-Lagrangian Eulerian(ALE) algorithm are compared. The development of the porthole-die aluminium is educed.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 472-475)

Pages:

214-218

Citation:

Online since:

February 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] J.X. Xie, T.Murakami, K.Ikeda and H.Takahashi: Journal of Materials Processing Technology. Vol.49(1995): pp.1-11

Google Scholar

[2] J.X. Xie, K. Ikeda and T. Murakami: Journal of Materials Processing Technology, Vol.49(1995): pp.371-385

Google Scholar

[3] Y.T Kim, K.Ikeda and T.Murakami: Journal of Materials Processing Technology, Vol.121(2002): pp.107-115

Google Scholar

[4] L. Donati, L. Tomesani: Journal of Materials Processing Technology, Vol.164–165(2005): p.1025–1031

Google Scholar

[5] P.F. Bariani, S. Bruschi and A. Ghiotti: Physical Simulation of Longitudinal Welding in Porthole-Die Extrusion,Annals of the CIRP. Vol.55(1) (2006)

DOI: 10.1016/s0007-8506(07)60418-1

Google Scholar

[6] M. Plata, J. Piwnik. Theoretical and Experimental Analysis of Seam Weld Formation in Hot Extrusion of Aluminum Alloys. Proceedings of the Seventh International Aluminum Extrusion Technology Seminar ET. I (2000): p.205–211

Google Scholar

[7] L.Donati, L.Tomesani: Journal of Materials Processing Technology. Vol.153–154(2004): pp.366-373

Google Scholar

[8] L Donati, L Tomesani and G Minak: International Journal of Materials & Product Technology. Vol. 191(2007): pp.127-131

Google Scholar

[9] E. Ceretti, L. Fratini, F. Gagliardi and C. Giardini: A new approach to study material bonding in extrusion porthole dies. CIRP Annals - Manufacturing Technology. Vol.58(2009): pp.259-262

DOI: 10.1016/j.cirp.2009.03.010

Google Scholar

[10] K.J. Kim, C.H. Lee and D.Y. Yang: Journal of Materials Processing Technology. Vol.130–131(2002): pp.426-431

Google Scholar

[11] J. M. Lee: Materials and Design. Vol.26(2005): pp.327-336

Google Scholar

[12] H.H.Jo, C.S. Jeong: Journal of Materials Processing Technology. Vol.139(2003):pp.428-433

Google Scholar

[13] H.H.Jo, S.K. LEE, C.S.JUNG, et al. : Journal of Materials Processing Technology. Vol. 173(2006): pp.223-231

Google Scholar

[14] Jingan Liu: Die design, manufacture, use and repair of aluminum profile extrusion. (Metallurgical Industry Press, Beijing 1999) . In Chinese

Google Scholar

[15] Jingan Liu, Jianxin Xie: Large aluminum alloy profiles extrusion technology and die design. (Metallurgical Industry Press, Beijing 2003) . In Chinese

Google Scholar

[16] Huping Yu, Yinghong Peng and Xueyu Ruan: FORGING & STAMPING TECHNOLOGY: Vol.24(5) (1999): pp.9-11. In Chinese

Google Scholar

[17] Hanwu Liu, Hua Ding , Jianzhong Cui: Mold industry.Vol.218(4) (1999): pp.9-11. In Chinese

Google Scholar

[18] Hanwu Liu, Zhiping Zhang and Xiuhai Wang: Journal of Harbin Institute of Technology.Vol.32(4) (2000): pp.86-88. In Chinese

Google Scholar

[19] Zhengshun Ni.The Research on the Coupled Thermal-Mechanical Numerical Analysis and the Structure Optimal Design to Aluminum Hot Extrusion Dies. (Central South University Doctoral Dissertation, Hunan 2006) . In Chinese

Google Scholar

[20] Xiaofeng Tian, Qifei Zheng and Shuisheng Xie: Chinese Journal of Rare Metals,. Vol.26(5)(2002) p:9-11. In Chinese

Google Scholar

[21] Liqing Di, Shihong zhang: Journal of Plasticity Engineering. Vol.16(12)(2009): pp.123-127. In Chinese

Google Scholar

[22] Dongnan Huang, Zhihao Zhang, Jingyuan Li and Jianxin Xie: The Chinese Journal of Nonferrous Metals.Vol. 20(5)(2010): pp.954-960. In Chinese

Google Scholar

[23] T.H.J. Vaneker, G. van Ouwerkerk: Integrated bottom up and top down approach to optimization of the extrusion process. CIRP Annals - Manufacturing Technology. Vol.57(2008): pp.183-186.

DOI: 10.1016/j.cirp.2008.03.075

Google Scholar

[24] S.H. Lee, J.M. Lee, H.H. Jo, H. Jo and B.M. Kim: Journal of Materials Processing Technology. Vol.201(2008): p.53–59

Google Scholar

[25] GU Ying-xin, CHEN Shu-li: Journal of Shenyang University. Vol.16(2) (2004): pp.36-37. In Chinese

Google Scholar

[26] CHENG Lei, XIE Shui-sheng and HUANG Guo-jie: Journal of System Simulation. Vol. 20( 24) (2008): pp.6603-6606. In Chinese

Google Scholar

[27] A.J. Williams, T. N. Croft and M. Cross: Journal of Materials Processing Technology. Vol.125-126(2) (2002): pp.573-582

Google Scholar

[28] A.J. Williams , A.K. Slone, T.N. Croft and M. Cross: Computer Methods in Applied Mechanics and Engineering Vol. 199 (2010): pp.2123-2134

DOI: 10.1016/j.cma.2010.03.001

Google Scholar

[29] B.V. Methtaa, Ibrahim Al-Akeria and Jay S.Gunasekeraa,et al: Journal of Materials Processing Technology. Vol. 113 (2001): pp.93-97

Google Scholar

[30] Fei Zhou, Dan Su, Yinghong Peng and Xueyu Ruan: The Chinese Journal of Nonferrous Metals.Vol. 13(1) (2003): pp.65-69. In Chinese

Google Scholar

[31] Xianghong Wu, Guoqun Zhao, Yiguo Luan and Xinwu Ma. Numerical simulation and die structure optimization of an aluminum rectangular hollow pipe extrusion process. Materials Science and Engineering A. Vol.435–436 (2006): pp.266-274

DOI: 10.1016/j.msea.2006.06.114

Google Scholar

[32] Kejian Huang, Zhongxu Bao and Feng Ruan: Journal of Plasticity Engineering. Vol. 12 (6) (2005): pp.34-37. In Chinese

Google Scholar

[33] Dayong Li, Chao Luo, Fei Zhou and Yinghong Peng: The Chinese Journal of Nonferrous Metals, Vol.14(8)(2004) p:1360-1365. In Chinese

Google Scholar

[34] Chao Luo, Dayong Li, Jilong Yin, Fei Zhou and Yinghong Peng: Journal of Shanghai Jiaotong University. Vol. 35(7) (2004): pp.1134-1137. In Chinese

Google Scholar

[35] Guangfa Huang, Gaoyong Lin and Jie Jiang: China Nonferrous Metals. Vol.16(5)(2006): pp.887-893. In Chinese

Google Scholar

[36] Youfeng He, Shuisheng Xie and Lei Cheng The Chinese Journal of Nonferrous Metals, Vol.21(5)(2011) :pp.995-1002. In Chinese

Google Scholar

[37] D.Y. Yang, K.Park and Y.S. Kang: Journal of Material Processing Technology. Vol.111(2001): pp.25-30

Google Scholar

[38] D.Y. Yang , K.J. Kim: Journal of Material Processing Technology. Vol.19(2007) :p.2–6

Google Scholar

[39] H.G. Mooi P.T.G. Koenis: Journal of Materials Processing Technology. Vol88(1999) :pp.67-76

Google Scholar

[40] J. van de Langkruis , J. Lof , W.H. Kool ,etc.: Computational Materials Science. Vol. 18(2000): pp.381-392

Google Scholar

[41] J.Lof: Journal of Materials Processing Technology. Vol.114(2)(2001) :pp.174-183

Google Scholar

[42] J.Lof, Y.Blokhuis: Journal of Materials Processing Technology, Vol.122(2-3)(2002) :pp.344-354

Google Scholar

[43] T.H.J. Vaneker, G. van Ouwerkerk, etc. Integrated bottom up and top down approach to optimization of the extrusion process.CIRP Annals - Manufacturing Technology. Vol.57(2008): pp.183-186

DOI: 10.1016/j.cirp.2008.03.075

Google Scholar

[44] Hao Chen, Guoqun Zhao, Cunsheng Zhang and Yanjin Guan: Journal of Mechanical Engineering. Vol.6(24)(2010): pp.34-39. In Chinese

Google Scholar

[45] Jianyi Pan, Zhaoyao Zhou, Yao Wang and Yuanbiao Wu: Journal of Plasticity Engineering, Vol.17(1)(2010) : pp.46-51. In Chinese

Google Scholar