[1] I. Shigematsu, Y. J.Kwon, K Suzuki, T. Imai and N. Saito, “Joining of 5083 and 6061 aluminum alloys by friction stir welding,” Journal of Materials Science Letters 22, pp. 353-356, 2003.
[2] M. Guerra, C. Schmidt, L.C. McClure, L.E. Murr and A. C Nunes, "Flow patterns during friction stir welding," Materials Characterization 49, pp. 95-101, 2003.
[3] Alloy 7075 plate and sheet, 2007.
[4] C. Blawert, N. Hort and K.U. Kainer, “Automotive Applications of Magnesium and its Alloys,” Trans. Indian Inst. Met. Vol. 57, No. 4, pp. 397–408, August 2004.
[5] R. Roth, J. Clark and A. Kelkar, “Automobile bodies: Can aluminum be an economical alternative to steel?” JOM, 53, pp. 28–32, 2001
[6] R.S. Mishra and Z.Y. Ma, “Friction stir welding and processing,” Materials Science and Engineering: R. Vol.50, No. 1-2 pp. 1–78, August 2005.
[7] J. G. Perrett, J. Martin, P. L. Threadgill and M.M.Z. Ahmed, “Recent Developments in Friction Stir Welding of Thick Section Aluminum Alloys,” The 6th World Congress, Aluminum Two Thousand, Florence, Italy, 13-17 March 2007.
[8] P.L.Threadgill, “Friction stir welds in aluminum alloys–preliminary microstructural assessment,” TWI Bull., 28, pp. 30–33, 1997. [9] M. Kadlec, R. Růžek and L. Nováková., “Mechanical behavior of AA 7475 friction stir welds with the kissing bond defect,” Int. J. Fatigue, Vol. 74, pp. 7–19, 2015.
[10] T. Le Jolu, T. F. Morgeneyer, A Denquin, M. Sennour, A Laurent, J. Besson and A. F. Gourgues-Lorenzon, “Microstructural characterization of internal welding Defects and their effect on the tensile behavior of FSW joints of AA2198 Al–Cu–Li alloy,” Metal & Mater. Trans. A., 45, 12, pp. 5531–44, 2014.
[11] R. Mishra, M.W. Mahoney, Y. Sato, Y. Hovanski and R.Verma,“Friction Stir Welding and Processing VII,” John Wiley and Sons, 29 January 2013.
[12] R. S. Mishra, Z.Y. Ma and I. Charit., “Friction stir processing: a novel technique for fabrication of surface composite,” Materials Science and Engineering A, Vol. 341, No.1-2, 20 January 2010.
[13] M. Massoud and H. Ding, “A review of ultrasonic peening treatment,” Materials & Design, Vol. 87, pp.1072–1086, December 2015.
[14] R. Zhang, X. Li, Y. Liu, C. He and Q. Wang, “Effect of Ultrasonic Peening Treatment on VHCF Behavior of Friction Stir Welded Joints in Aluminum Alloys,” IOP Conf. Series: Materials Science and Engineering 611,012011, Wuhan, china, 19-21 July 2019.
[15] L. Chuan, C. Dongjun, R. Michael, N. Minh and Z. Jiasheng, “Effects of ultrasonic impact treatment on weld microstructure, hardness, and residual stress,” Materials Science and Technology, Vol. 33, No. 14, pp. 1601–1609, 2017. .
[16] Hangzhou Create Ultrasonic Technology Co. Ltd, “Ultrasonic Generator, Ultrasonic pre stressing force impact treatment system,” Operation instruction.WW. hzcreate. eng. Alibaba.Com, 2013.
[17] ASM Handbook, “Metallography and Microstructures,” American Society for Metals, Vol. 9, 2004.
[18] Standard Test Methods for Tension Testing of Metallic Materials, E8M-09, ASTM, 2010.
[19] Standard Test Method for Vickers Hardness of Metallic Materials, E92–82, ASTM, 2003.
[20] Standard Reference Radiographs for Inspection of Aluminum and Magnesium Castings, E155, ASTM, 2014.
[21] R.K.R. Singh, C. Sharma, D.K. Dwivedi , N.K. Mehta, and P. Kumar , “The microstructure and mechanical properties of friction stir welded Al–Zn–Mg alloy in as welded and heat treated conditions,” Journal Materials and Design, Vol. 32, No.2, pp. 682-687, 2011.
[22] A. Barcellona, G. Buffa., L. Fratini, and D. Palmeri, “Microstructural phenomena occurring in friction