2 Fundamentals of Friction Stir Welding, Its Application, and Advancements
87
103. Research areas in space by ISRO. AI, respond office capacity building program. ISRO HQ,
Bengaluru
104. Thomas WM, Kallee SW, Staines DG, Oakley PJ (2006) Friction stir welding—Process
variants and developments in the automotive industry (TWI Ltd.) In:SAE world congress.
Cobo Center, Detroit, Michigan, USA
105. Toros S, Ozturk F, Kacar I (2008) Review of warm forming of aluminum—magnesium alloys.
J. Mater Process Technol 7:1–12
106. Miller WS et al (2000) Recent development in aluminium alloys for the automotive industry.
Mater Sci Eng A280
107. Kallee SW. Industrial applications of friction stir welding. Woodhead Publishing Limited
108. Oma S, Midling OT, Kvale JS (2000) Application of prefabricated friction stir welded panels
in catamaran building. In: 4th International forum aluminum ships. New Orleans
109. Kallee SW, Davenport J, Nicholas ED (2002) Railway manufacturers implement friction stir
welding. Weld 81:47–50
110. Bakar SSSA, Sharif S, Faridh M (2019) Assessment of friction stir welding on aluminium
3D printing materials. Int J Recent Technol Eng 4:10975–10980
111. Ribton CN, Andrews RE (2001) Canister sealing for high level encapsulation TWI Ltd. In:
International high-level radioactive waste management conference, Las Vegas, Nevada, USA,
29 Apr–3 May 2001
112. Deqing W, Shuhua LIU (2004) Study of friction stir welding of aluminum. J Mater Sci
9:1689–1693
113. Hou JC, Liu HJ, Zhao YQ (2014) Influences of rotation speed on microstructures and mechanical properties of 6061-T6 aluminum alloy joints fabricated by self-reacting friction stir
welding tool. Int J Adv Manuf Technol 1073–1079
114. Liu H, Zhang H, Pan Q, Yu L (2012) Effect of friction stir welding parameters on microstructural characteristics and mechanical properties of 2219-T6 aluminum alloy joints. Int J Mater
Form 235–241
115. Marzbanrad J, Akbari M, Asadi P, Safaee S (2014) Characterization of the influence of tool
pin profile on microstructural and mechanical properties of friction stir welding
116. Mohammadi-pour M, Khodabandeh A (2016) Microstructure and mechanical properties
of joints welded by friction-stir welding in aluminum alloy 7075-T6 plates for aerospace
application. Rare Met
117. Jamalian HM, Farahani M (2016) Study on the effects of friction stir welding process parameters on the microstructure and mechanical properties of 5086-H34 aluminum welded joints.
Int J Adv Manuf Technol 611–621
118. Saravanan V, Rajakumar S, Banerjee N, Amuthakkannan R (2016) Effect of shoulder diameter
to pin diameter ratio on microstructure and mechanical properties of dissimilar friction stir
welded AA2024-T6 and AA7075-T6 aluminum alloy joints. Int J Adv Manuf Technol 3637–
3645
119. Grujicic M et al (2012) Computational analysis of material flow during friction stir welding
of AA5059 aluminum alloys. J Mater Eng Perform 21(September):1824–1840
120. Zhang HWZ, Chen JT, Zhang ZW (2011) Coupled thermo-mechanical model based comparison of friction stir welding processes of AA2024-T3 in different thicknesses. J Mater Sci
5815–5821
121. Buffa G, Hua J, Shivpuri R, Fratini L (2006) Design of the friction stir welding tool using the
continuum based FEM model. Mater Sci Eng A 419:381–388
122. Ebrahimi M, Par MA (2019) Twenty-year uninterrupted endeavor of friction stir processing
by focusing on copper and its alloys. J Alloys Compd 781:1074–1090
123. Guan W, Shen Y, Yan Y, Guo R, Zhang W (2018) Fabrication of ultra-thin copper foil pressure
welding using FSW equipment. J Mater Process Tech 251(February 2017):343–349
124. Lee WB, Jung SB (2004) The joint properties of copper by friction stir welding. Mater Lett
58(6):1041–1046
125. Hwang YM, Fan PL, Lin CH (2010) Experimental study on friction stir welding of copper
metals. J Mater Process Technol 210(12):1667–1672
87
103. Research areas in space by ISRO. AI, respond office capacity building program. ISRO HQ,
Bengaluru
104. Thomas WM, Kallee SW, Staines DG, Oakley PJ (2006) Friction stir welding—Process
variants and developments in the automotive industry (TWI Ltd.) In:SAE world congress.
Cobo Center, Detroit, Michigan, USA
105. Toros S, Ozturk F, Kacar I (2008) Review of warm forming of aluminum—magnesium alloys.
J. Mater Process Technol 7:1–12
106. Miller WS et al (2000) Recent development in aluminium alloys for the automotive industry.
Mater Sci Eng A280
107. Kallee SW. Industrial applications of friction stir welding. Woodhead Publishing Limited
108. Oma S, Midling OT, Kvale JS (2000) Application of prefabricated friction stir welded panels
in catamaran building. In: 4th International forum aluminum ships. New Orleans
109. Kallee SW, Davenport J, Nicholas ED (2002) Railway manufacturers implement friction stir
welding. Weld 81:47–50
110. Bakar SSSA, Sharif S, Faridh M (2019) Assessment of friction stir welding on aluminium
3D printing materials. Int J Recent Technol Eng 4:10975–10980
111. Ribton CN, Andrews RE (2001) Canister sealing for high level encapsulation TWI Ltd. In:
International high-level radioactive waste management conference, Las Vegas, Nevada, USA,
29 Apr–3 May 2001
112. Deqing W, Shuhua LIU (2004) Study of friction stir welding of aluminum. J Mater Sci
9:1689–1693
113. Hou JC, Liu HJ, Zhao YQ (2014) Influences of rotation speed on microstructures and mechanical properties of 6061-T6 aluminum alloy joints fabricated by self-reacting friction stir
welding tool. Int J Adv Manuf Technol 1073–1079
114. Liu H, Zhang H, Pan Q, Yu L (2012) Effect of friction stir welding parameters on microstructural characteristics and mechanical properties of 2219-T6 aluminum alloy joints. Int J Mater
Form 235–241
115. Marzbanrad J, Akbari M, Asadi P, Safaee S (2014) Characterization of the influence of tool
pin profile on microstructural and mechanical properties of friction stir welding
116. Mohammadi-pour M, Khodabandeh A (2016) Microstructure and mechanical properties
of joints welded by friction-stir welding in aluminum alloy 7075-T6 plates for aerospace
application. Rare Met
117. Jamalian HM, Farahani M (2016) Study on the effects of friction stir welding process parameters on the microstructure and mechanical properties of 5086-H34 aluminum welded joints.
Int J Adv Manuf Technol 611–621
118. Saravanan V, Rajakumar S, Banerjee N, Amuthakkannan R (2016) Effect of shoulder diameter
to pin diameter ratio on microstructure and mechanical properties of dissimilar friction stir
welded AA2024-T6 and AA7075-T6 aluminum alloy joints. Int J Adv Manuf Technol 3637–
3645
119. Grujicic M et al (2012) Computational analysis of material flow during friction stir welding
of AA5059 aluminum alloys. J Mater Eng Perform 21(September):1824–1840
120. Zhang HWZ, Chen JT, Zhang ZW (2011) Coupled thermo-mechanical model based comparison of friction stir welding processes of AA2024-T3 in different thicknesses. J Mater Sci
5815–5821
121. Buffa G, Hua J, Shivpuri R, Fratini L (2006) Design of the friction stir welding tool using the
continuum based FEM model. Mater Sci Eng A 419:381–388
122. Ebrahimi M, Par MA (2019) Twenty-year uninterrupted endeavor of friction stir processing
by focusing on copper and its alloys. J Alloys Compd 781:1074–1090
123. Guan W, Shen Y, Yan Y, Guo R, Zhang W (2018) Fabrication of ultra-thin copper foil pressure
welding using FSW equipment. J Mater Process Tech 251(February 2017):343–349
124. Lee WB, Jung SB (2004) The joint properties of copper by friction stir welding. Mater Lett
58(6):1041–1046
125. Hwang YM, Fan PL, Lin CH (2010) Experimental study on friction stir welding of copper
metals. J Mater Process Technol 210(12):1667–1672
