Numerical Studies on Friction Stir Welding of Lightweight Materials

Article Preview

Abstract:

Friction stir welding (FSW) is a relatively new solid-state fastening method which is suitable for joining advanced lightweight metal sheets that are hard to weld. Latest literature relating to finite element analysis (FEA) of FSW process is reviewed in this paper. The recent development in FEA of FSW process is described with particular reference to three major factors that influence the performance of FSW joints: modeling technique, tool design and process parameters. The main FE methods used in FSW process are discussed and illustrated with brief case studies from the literature.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

118-122

Citation:

Online since:

August 2013

Authors:

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] X. He: Mater Manuf Processes, Vol. 27(12), (2012), p.1354.

Google Scholar

[2] X. He: Int J Adv Manuf Technol, Vol. 58, (2012), p.643.

Google Scholar

[3] X. He: Int J Adhe Adhe, Vol. 31, (2011), p.248.

Google Scholar

[4] R.S. Mishra, Z.Y. Ma: Mater Sci Eng R, Vol. 50(1-2), (2005), p.1.

Google Scholar

[5] R. Nandan, T. DebRoy, H.K.D.H. Bhadeshia: Progress Mater Sci, Vol. 53(6), (2008), p.980.

Google Scholar

[6] P.L. Threadgilll, A.J. Leonard, H.R. Shercliff, P.J. Withers: Int Mater Reviews, Vol. 54(2), (2009), p.49.

Google Scholar

[7] M. Chiumenti, M. Cervera, C. Agelet de Saracibar, N. Dialami: Comput Meth Appl Mech Engng, Vol. 254, (2013), p.353.

DOI: 10.1016/j.cma.2012.09.013

Google Scholar

[8] M.Z. Zhou, D.G. Lei, N. Liang, J.H. Yang: Trans China Weld Inst, Vol. 31(2), (2010), (in Chinese), p.5.

Google Scholar

[9] H. Wang, P.A. Colegrove, J. dos Santos: Sci Tech Weld Joining, Vol. 18(2), (2013), p.147.

Google Scholar

[10] N. Dialami, M. Chiumenti, M. Cervera, C. Agelet De Saracibar: Comput Struct, Vol. 117, ( 2013), p.48.

DOI: 10.1016/j.compstruc.2012.12.006

Google Scholar

[11] G. Buffa, J. Hua, R. Shivpuri, L. Fratini: Mater Sci Engng A, Vol. 419(1-2), (2006), p.389.

Google Scholar

[12] W.X. Pan, D.S. Li, A.M. Tartakovsky, S. Ahzi, M. Khraisheh, M. Khaleel: Int J Plast, in press.

Google Scholar

[13] J.H. Cho, D.E. Boyce, P.R. Dawson: Model Simulat Mater Sci Engng, Vol. 15(5), (2007), p.469.

Google Scholar

[14] J.H. Cho, P.R. Dawson: Metall Mater Trans A, Vol. 37(4), (2006), p.1147.

Google Scholar

[15] N.S. Ma, A. Kunugi, T. Hirashima, K. Okubo, M. Kamioka: Weld Int, Vol. 23(1), (2009), p.9.

Google Scholar

[16] R. Hamilton, D. Mackenzie, H.J. Li: Engng Comput, (2010), Vol. 27(8), p.967.

Google Scholar

[17] H. Li, D. MacKenzie, R. Hamilton: Proc Ins Mech Engrs, Part B, Vol. 224(8), (2010), p.1161.

Google Scholar

[18] H. Jamshidi Aval, S. Serajzadeh, A.H. Kokabi: Mater Sci Engng A, Vol. 528(28), p.8071.

Google Scholar

[19] P. Biswas, N.R. Mandal: Welding Journal, Vol. 90(7), (2011), p 129s.

Google Scholar

[20] G. Buffa, J. Hua, R. Shivpuri, L. Fratini: Mater Sci Engng A, Vol. 419(1-2), (2006), p.381.

Google Scholar

[21] G. Buffa, G. Campanile, L. Fratini, A. Prisco: Mater Sci Engng A, Vol. 519(1-2), (2009), p.19.

Google Scholar

[22] G. Buffa, A. Forcellese, L. Fratini, M. Simoncini: Key Engng Mater, Vols 504-506, (2012), p.747.

Google Scholar

[23] C. Bruni, G. Buffa, L. D'Apolito, A. Forcellese, L. Fratini: Key Engng Mater, Vols 410-411, (2009), p.555.

Google Scholar

[24] C. Bruni, G. Buffa, L. Fratini, M. Simoncini: Mater Sci Forum, Vols 638-642, (2010), p.3954.

DOI: 10.4028/www.scientific.net/msf.638-642.3954

Google Scholar

[25] Z. Zhang, Y.L. Liu, J.T. Chen: Int J Adv Manuf Tech, Vol. 45(9-10), (2009), p.889.

Google Scholar

[26] P. Ganesh, V.S. Senthil Kumar: Adv Mater Research, Vols 488-489, (2012), p.753.

Google Scholar

[27] W.Y. Li, M. Yu, J.L. Li, D.L. Gao: Mater Sci Forum, Vols 620-622, (2009), p.233.

Google Scholar

[28] J.G. Michopoulos, S. Lambrakos, A. Iliopoulos: Proc ASME Design Engng Tech Conf 2011, Vol. 2, PARTS A-B, (2011), p.233.

Google Scholar

[29] A. Alimoradi, M. Loh-Mousavi, R. Salekrostam: Defect Diffus Forum, Vols 312-315, (2011), p.953.

DOI: 10.4028/www.scientific.net/ddf.312-315.953

Google Scholar

[30] Z. Zhang, H.W. Zhang: J Mater Process Tech, Vol. 209(1), (2009), p.241.

Google Scholar

[31] X.K. Zhu, Y.J. Chao: J Mater Process Tech, Vol. 146(2), (2004), p.263.

Google Scholar

[32] X. Zhao, P. Kalya, R.G. Landers, K. Krishnamurthy: J Manuf Sci Engng, Trans ASME, Vol. 131(2), (2009), p.0210011.

Google Scholar

[33] H. Eisazadeh, M. Hamedi, K. Rashad-S: Weld World, Vol. 53(SPECIAL ISSUE), (2009), p.265.

Google Scholar

[34] G. Buffa, D. Campanella, L. Fratini: Sci Tech Weld Join, Vol. 18(2), (2013), p.161.

Google Scholar

[35] F. Gemme, Y. Verreman, L. Dubourg, M. Jahazi: Mater Sci Engng A, Vol. 527(16-17), (2010), p.4152.

Google Scholar

[36] C. Bruni, G. Buffa, L. Fratini, M. Simoncini: Mater Sci Forum, 2010, Vols 638-642, (2010), p.3954.

DOI: 10.4028/www.scientific.net/msf.638-642.3954

Google Scholar

[37] N. Rajamanickam, V. Balusamy, G. Madhusudhanna Reddy, K. Natarajan: Mater Des, Vol. 30(7), (2009), p.2726.

Google Scholar

[38] K. Gök, M. Aydin: Int J Adv Manuf Tech, in press.

Google Scholar

[39] H. Jamshidi Aval, S. Serajzadeh, A.H. Kokabi: Int J Adv Manuf Tech, Vol. 61(1-4), (2012), p.149.

Google Scholar

[40] Z. Zhang, Z.Y. Wan: Sci Tech Weld Join, Vol. 17(6), (2012), p.495.

Google Scholar

[41] Z. Zhang, H.W. Zhang: Acta Metall Sinica, Vol. 43(3), (2007), (in Chinese), p.321.

Google Scholar