3 Modeling of Friction Stir Welding Processes
129
54. Mahoney M, Mishra RS, Nelson T (2001) Friction stir welding and processing. TMS,
Warrendale, PA, USA
55. Mijajlovi´ c M, Milˇ cic D (2012) Analytical model for estimating the amount of heat generated
during friction stir welding: application on plates made of aluminium alloy 2024 T351. In:
Welding processes. InTech
56. Malik V, Sanjeev NK, Hebbar HS, Kailas SV (2014) Time efficient simulations of plunge and
dwell phase of FSW and its significance in FSSW. Procedia Mater Sci 5:630–639
57. Mishra RS, Ma ZY (2005) Friction stir welding and processing. Mater Sci Eng: R: Rep 50(1–
2):1–78
58. Nandan R, Roy GG, Lienert TJ, DebRoy T (2006) Numerical modelling of 3D plastic flow
and heat transfer during friction stir welding of stainless steel. Sci Technol Weld Joining
11(5):526–537
59. Neto DM, Neto P (2013) Numerical modeling of friction stir welding process: a literature
review. Int J Adv Manuf Technol 65(1–4):115–126
60. Patel C, Das S, Narayanan RG (2013) CAFE modeling, neural network modeling, and experimental investigation of friction stir welding. Proc Inst Mech Eng Part C: J Mech Eng Sci
227(6):1164–1176
61. Priyadarshini A, Pal SK, Samantaray AK (2012) Finite element modeling of chip formation in
orthogonal machining. Stat Comput Tech Manuf 101–144
62. Qian M, Guo ZX (2004) Cellular automata simulation of microstructural evolution during
dynamic recrystallization of an HY-100 steel. Mater Sci Eng: A 365(1–2):180–185
63. Rajpoot YS, Narayanan RG, Das S (2018) Predicting the effect of tool configuration during
friction stir welding by cellular automata finite element analyses. Int J Manuf Res 13(4):359–
381
64. Rao SS (2017) The finite element method in engineering. Butterworth-heinemann
65. Reynolds AP (2000) Visualisation of material flow in autogenous friction stir welds. Sci Technol
Weld Joining 5(2):120–124
66. Richards DG, PrangnellPB WSW, Withers PJ (2008) Global mechanical tensioning for the
management of residual stresses in welds. Mater Sci Eng A 489(1–2):351–362
67. Russel M, Shercliff H (1999) Analytical modeling of microstructure development in friction
stir welding. In: 1st International symposium on friction stir welding, USA
68. Salimi S, Bahemmat P, Haghpanahi M (2016) Analytical model for the temperature field around
a nonuniform three-dimensional moving heat source: friction stir welding modelling. J Eng
Math 98(1):71–91
69. Saluja RS, Narayanan RG, Das S (2012) Cellular automata finite element (CAFE) model to
predict the forming of friction stir welded blanks. Comput Mater Sci 58:87–100
70. Samanta A, Shen N, Ji H, Wang W, Li J, Ding H (2018) Cellular automaton simulation of
microstructure evolution for friction stir blind riveting. J Manuf Sci Eng 140(3)
71. Sato YS, Urata M, Kokawa H (2002) Parameters controlling microstructure and hardness during
friction–stir welding of precipitation–hardenable aluminum alloy 6063. Metall Mater Trans A
33(3):625–635
72. Schmidt H, Hattel J, Wert J (2003) An analytical model for the heat generation in friction stir
welding. Modell Simul Mater Sci Eng 12(1):143
73. Schmidt H, Hattel J (2005) Modelling heat flow around tool probe in friction stir welding. Sci
Technol Weld Joining 10(2):176–186
74. Sellars CM, Tegart WM (1972) Hot workability. . Int Metall Rev 17(1):1–24
75. Shojaeefard MH, Akbari M, Khalkhali A, Asadi P, Parivar AH (2014) Optimization of
microstructural and mechanical properties of friction stir welding using the cellular automaton
and Taguchi method. Mater Des 64:660–666
76. Shterenlikht A, Howard IC (2006) The CAFE model of fracture—application to a TMCR steel.
Fatigue Fract Eng Mater Struct 29(9–10):770–787
77. Skrzat A (2012) Application of coupled Eulerian-Lagrangian approach in metal forming
simulations. ZeszytyNaukowePolitechnikiRzeszowskiej. Mechanika 84 [284], nr 4, 25–35
129
54. Mahoney M, Mishra RS, Nelson T (2001) Friction stir welding and processing. TMS,
Warrendale, PA, USA
55. Mijajlovi´ c M, Milˇ cic D (2012) Analytical model for estimating the amount of heat generated
during friction stir welding: application on plates made of aluminium alloy 2024 T351. In:
Welding processes. InTech
56. Malik V, Sanjeev NK, Hebbar HS, Kailas SV (2014) Time efficient simulations of plunge and
dwell phase of FSW and its significance in FSSW. Procedia Mater Sci 5:630–639
57. Mishra RS, Ma ZY (2005) Friction stir welding and processing. Mater Sci Eng: R: Rep 50(1–
2):1–78
58. Nandan R, Roy GG, Lienert TJ, DebRoy T (2006) Numerical modelling of 3D plastic flow
and heat transfer during friction stir welding of stainless steel. Sci Technol Weld Joining
11(5):526–537
59. Neto DM, Neto P (2013) Numerical modeling of friction stir welding process: a literature
review. Int J Adv Manuf Technol 65(1–4):115–126
60. Patel C, Das S, Narayanan RG (2013) CAFE modeling, neural network modeling, and experimental investigation of friction stir welding. Proc Inst Mech Eng Part C: J Mech Eng Sci
227(6):1164–1176
61. Priyadarshini A, Pal SK, Samantaray AK (2012) Finite element modeling of chip formation in
orthogonal machining. Stat Comput Tech Manuf 101–144
62. Qian M, Guo ZX (2004) Cellular automata simulation of microstructural evolution during
dynamic recrystallization of an HY-100 steel. Mater Sci Eng: A 365(1–2):180–185
63. Rajpoot YS, Narayanan RG, Das S (2018) Predicting the effect of tool configuration during
friction stir welding by cellular automata finite element analyses. Int J Manuf Res 13(4):359–
381
64. Rao SS (2017) The finite element method in engineering. Butterworth-heinemann
65. Reynolds AP (2000) Visualisation of material flow in autogenous friction stir welds. Sci Technol
Weld Joining 5(2):120–124
66. Richards DG, PrangnellPB WSW, Withers PJ (2008) Global mechanical tensioning for the
management of residual stresses in welds. Mater Sci Eng A 489(1–2):351–362
67. Russel M, Shercliff H (1999) Analytical modeling of microstructure development in friction
stir welding. In: 1st International symposium on friction stir welding, USA
68. Salimi S, Bahemmat P, Haghpanahi M (2016) Analytical model for the temperature field around
a nonuniform three-dimensional moving heat source: friction stir welding modelling. J Eng
Math 98(1):71–91
69. Saluja RS, Narayanan RG, Das S (2012) Cellular automata finite element (CAFE) model to
predict the forming of friction stir welded blanks. Comput Mater Sci 58:87–100
70. Samanta A, Shen N, Ji H, Wang W, Li J, Ding H (2018) Cellular automaton simulation of
microstructure evolution for friction stir blind riveting. J Manuf Sci Eng 140(3)
71. Sato YS, Urata M, Kokawa H (2002) Parameters controlling microstructure and hardness during
friction–stir welding of precipitation–hardenable aluminum alloy 6063. Metall Mater Trans A
33(3):625–635
72. Schmidt H, Hattel J, Wert J (2003) An analytical model for the heat generation in friction stir
welding. Modell Simul Mater Sci Eng 12(1):143
73. Schmidt H, Hattel J (2005) Modelling heat flow around tool probe in friction stir welding. Sci
Technol Weld Joining 10(2):176–186
74. Sellars CM, Tegart WM (1972) Hot workability. . Int Metall Rev 17(1):1–24
75. Shojaeefard MH, Akbari M, Khalkhali A, Asadi P, Parivar AH (2014) Optimization of
microstructural and mechanical properties of friction stir welding using the cellular automaton
and Taguchi method. Mater Des 64:660–666
76. Shterenlikht A, Howard IC (2006) The CAFE model of fracture—application to a TMCR steel.
Fatigue Fract Eng Mater Struct 29(9–10):770–787
77. Skrzat A (2012) Application of coupled Eulerian-Lagrangian approach in metal forming
simulations. ZeszytyNaukowePolitechnikiRzeszowskiej. Mechanika 84 [284], nr 4, 25–35
