169
Views
187
CrossRef citations to date
0
Altmetric
Articles

Determination of flow stress: Part 1 constitutive equation for aluminium alloys at elevated temperatures

Pages 215-223 | Published online: 19 Jul 2013

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (43)

Danilo Ambrosio, Egoitz Aldanondo, Vincent Wagner, Gilles Dessein, Christian Garnier, Javier Vivas & Olivier Cahuc. (2022) A semi-empirical model for peak temperature estimation in friction stir welding of aluminium alloys. Science and Technology of Welding and Joining 27:7, pages 491-500.
Read now
Rong-Tsong Lee, Yuang-Cherng Chiou, I-Hsun Huang & Ming-Jer Hsieh. (2021) Numerical and experimental investigation on FSSW of Al alloy to steel using an embedded rod tool. Journal of the Chinese Institute of Engineers 44:8, pages 771-782.
Read now
Rituraj Bhattacharjee & Pankaj Biswas. (2021) Review on thermo-mechanical and material flow analysis of dissimilar friction stir welding. Welding International 35:7-9, pages 295-332.
Read now
Zhikang Shen, Yuquan Ding & Adrian P. Gerlich. (2020) Advances in friction stir spot welding. Critical Reviews in Solid State and Materials Sciences 45:6, pages 457-534.
Read now
Chunliang Yang, ChuanSong Wu & Lei Shi. (2020) Phase-field modelling of dynamic recrystallization process during friction stir welding of aluminium alloys. Science and Technology of Welding and Joining 25:4, pages 345-358.
Read now
C. L. Yang & C. S. Wu. (2019) Constitutive equation with residual hardening effect for modeling the ultrasonic vibration enhanced friction stir welding process. Science and Technology of Welding and Joining 24:8, pages 695-705.
Read now
Jinwen Qian, Yan Ou, Jinglong Li, Yifeng Xiao, Liang Wu & Yanfei Xu. (2017) An analytical model to calculate the peak temperature for friction stir welding. Science and Technology of Welding and Joining 22:6, pages 520-525.
Read now
C. G. Yao, B. Wang, D. Q. Yi, B. Wang & X. F. Ding. (2014) Artificial neural network modelling to predict hot deformation behaviour of as HIPed FGH4169 superalloy. Materials Science and Technology 30:10, pages 1170-1176.
Read now
Chase Cox, David Lammlein, Alvin Strauss & George Cook. (2010) Modeling the Control of an Elevated Tool Temperature and the Affects on Axial Force During Friction Stir Welding. Materials and Manufacturing Processes 25:11, pages 1278-1282.
Read now
K. E. Tello, A. P. Gerlich & P. F. Mendez. (2010) Constants for hot deformation constitutive models for recent experimental data. Science and Technology of Welding and Joining 15:3, pages 260-266.
Read now
P. A. Colegrove, H. R. Shercliff & R. Zettler. (2007) Model for predicting heat generation and temperature in friction stir welding from the material properties. Science and Technology of Welding and Joining 12:4, pages 284-297.
Read now
P. A. Colegrove & H. R. Shercliff. (2006) CFD modelling of friction stir welding of thick plate 7449 aluminium alloy. Science and Technology of Welding and Joining 11:4, pages 429-441.
Read now
A. Bastier, M. H. Maitournam, K. Dang Van & F. Roger. (2006) Steady state thermomechanical modelling of friction stir welding. Science and Technology of Welding and Joining 11:3, pages 278-288.
Read now
Y.-H. Zhao, S.-B. Lin, Z.-Q. He & L. Wu. (2006) Microhardness prediction in friction stir welding of 2014 aluminium alloy. Science and Technology of Welding and Joining 11:2, pages 178-182.
Read now
Arnaud Bastier, M. Habibou Maitournam, Ky Dang Van & Frédéric Roger. (2006) Modélisation numérique du Friction Stir Welding. European Journal of Computational Mechanics 15:1-3, pages 41-52.
Read now
B. Roebuck, M.S. Loveday, Y. Chastel, G. Fiorucci & T. Dal Negro. (2006) Measurement of flow stress at high temperature in solid torsion tests. Materials at High Temperatures 23:2, pages 119-144.
Read now
I. Flitta & T. Sheppard. (2005) Material flow during the extrusion of simple and complex cross-sections using FEM. Materials Science and Technology 21:6, pages 648-656.
Read now
I. Flitta & T. Sheppard. (2005) Effect of pressure and temperature variations on FEM prediction of deformation during extrusion. Materials Science and Technology 21:3, pages 339-346.
Read now
M.Q. Li, A.M. Xiong, H.R. Wang, S.B. Su & L.C. Shen. (2004) Deformation behaviour and new constitutive equation utilising the grain size of commercial TC6 titanium alloy. Materials Science and Technology 20:10, pages 1261-1265.
Read now
G. Avramovic-Cingara, H. J. McQueen & D. D. Perovic. (2003) Comparison of torsion and compression constitutive analyses for elevated temperature deformation of Al–Li–Cu–Mn alloy. Materials Science and Technology 19:1, pages 11-19.
Read now
I. Flitta & T. Sheppard. (2002) Simulation of bridge die extrusion using the finite element method. Materials Science and Technology 18:9, pages 987-994.
Read now
R.K. Goswami, R. Sikand, A. Dhar, O.P. Grover, U.C. Jindal & A.K. Gupta. (1999) Extrusion characteristics of aluminium alloy/SiCpmetal matrix composites. Materials Science and Technology 15:4, pages 443-449.
Read now
M. Zhou, H. Y. Ahmad & M. P. Clode. (1998) THERMAL EFFECTS ON FLOW PROPERTIES OF ALUMINUM ALLOYS. Journal of Thermal Stresses 21:5, pages 509-518.
Read now
M. Zhou & M. P. Clode. (1997) Modelling of high temperature viscoplastic flow of aluminium alloys by hot torsion testing. Materials Science and Technology 13:10, pages 818-824.
Read now
T. Sheppard & A. Jackson. (1997) Constitutive equations for use in prediction of flow stress during extrusion of aluminium alloys. Materials Science and Technology 13:3, pages 203-209.
Read now
Geoffrey K. Sigworth. (1996) Rheological Properties of Metal Alloys in the Semi-Solid State. Canadian Metallurgical Quarterly 35:2, pages 101-122.
Read now
H. J. McQueen, K. Conrod & G. Avramovic-Cingara. (1993) The Hot Working Characteristics of Eutectic-Rod-Stabilized Conductor Alloys. Canadian Metallurgical Quarterly 32:4, pages 375-386.
Read now
T. Sheppard & J. Norley. (1988) Deformation characteristics of Ti–6Al–4V. Materials Science and Technology 4:10, pages 903-908.
Read now
P. A. Hollinshead & T. Sheppard. (1987) Substructure morphology in aluminium alloys AA 3003 and AA 3004. Materials Science and Technology 3:12, pages 1019-1024.
Read now
P. Richards & T. Sheppard. (1986) Constitutive relationship and structural characteristics of two ferritic stainless steels deformed in torsion and rolling. Materials Science and Technology 2:8, pages 841-846.
Read now
G. J. Marshall & T. Sheppard. (1986) Structural development during production of tubes from rapidly solidified aluminium alloy powder. Materials Science and Technology 2:6, pages 611-619.
Read now
T. Sheppard & R. P. Vierod. (1985) Effect of preheat modification on extrusion characteristics of aluminium alloy 2014. Materials Science and Technology 1:4, pages 321-324.
Read now
H. L. Yiu & T. Sheppard. (1985) Deformation of Cu–P alloys at high temperatures. Materials Science and Technology 1:3, pages 209-219.
Read now
M. A. Zaidi & T. Sheppard. (1982) Development of microstructure throughout roll gap during rolling of aluminium alloys. Metal Science 16:5, pages 229-238.
Read now
G. F. Bryant & T. S. L. Chiu. (1982) Simplified roll-temperature model: convective cooling. Metals Technology 9:1, pages 478-484.
Read now
T. Sheppard & M. A. Zaidi. (1982) Deformation during multipass rolling of commercial-purity aluminium. Metals Technology 9:1, pages 52-59.
Read now
T. Sheppard & S. J. Paterson. (1982) Direct and indirect extrusion of aluminium alloys. Metals Technology 9:1, pages 274-281.
Read now
T. Sheppard. (1981) Temperature and speed effects in hot extrusion of aluminium alloys. Metals Technology 8:1, pages 130-141.
Read now
T. Sheppard & D. S. Wright. (1981) Parameters affecting lateral deformation in slabbing mills. Metals Technology 8:1, pages 46-57.
Read now
T. Sheppard & M. G. Tutcher. (1980) Development of duplex deformation substructure during extrusion of a commercial Al-5Mg-0.8Mn alloy. Metal Science 14:12, pages 579-590.
Read now
M. G. Tutcher & T. Sheppard. (1980) Extrusion limits of Al-5 Mg-O·8 Mn alloy (AA 5456). Metals Technology 7:1, pages 488-493.
Read now
T. Sheppard & E. P. Wood. (1980) Effect of section geometry on extrudability of Al–Cu–Mn alloy. Metals Technology 7:1, pages 58-66.
Read now
T. Sheppard & D. S. Wright. (1980) Structural and temperature variations during rolling of aluminium slabs. Metals Technology 7:1, pages 274-281.
Read now

Articles from other publishers (144)

Y.C. Silva, T.C. Andrade, F.J.V. Oliveira Júnior, A.B.F. Sousa, Jorge F. dos Santos, F. Marcondes, H.C. Miranda & C.C. Silva. (2023) Numerical investigation of the influence of friction stir welding parameters on the microstructure of AISI 410S ferritic stainless steel joints. Journal of Materials Research and Technology 27, pages 8344-8359.
Crossref
H. Venghaus, M. Chiumenti, J. Baiges, D. Juhre & I. Castañar. (2023) An accurate approach to simulate friction stir welding processes using adaptive formulation refinement. Finite Elements in Analysis and Design 224, pages 103986.
Crossref
K. C. Kincaid, D. W. MacPhee, G. G. Stubblefield, J. B. Jordon, T. W. Rushing & P. G. Allison. (2023) A Finite Volume Framework for the Simulation of Additive Friction Stir Deposition. Journal of Engineering Materials and Technology 145:3.
Crossref
Xiankun Zhang, Lei Shi, Chuansong Wu, Chunliang Yang & Song Gao. (2023) Multi-phase modelling of heat and mass transfer during Ti/Al dissimilar friction stir welding process. Journal of Manufacturing Processes 94, pages 240-254.
Crossref
Yu Wang & Mary A. Wells. (2023) The Effect of the Bridge’s Angle during Porthole Die Extrusion of Aluminum AA6082. Metals 13:3, pages 605.
Crossref
Kaushal Jha, Vishal Mehra & R.N. Singh. (2023) Application of Sellars-Tagart constitutive law to modelling of stir-friction welding of CuCrZr plates. Materials Today: Proceedings 87, pages 351-355.
Crossref
Ming Zhai, ChuanSong Wu, Lei Shi, GaoQiang Chen & QingYu Shi. (2023) Dislocation strain energy based modeling for ultrasonic effect on friction stir lap welding process of dissimilar Mg/Al alloys. Journal of Materials Research and Technology 22, pages 252-268.
Crossref
K. J. Maheshwaran & R. Padmanaban. 2023. Recent Advances in Materials Technologies. Recent Advances in Materials Technologies 169 181 .
Tianxiang Tang, Qingyu Shi, Bingwang Lei, Jun Zhou, Yunxi Gao, Yongqing Li, Gong Zhang & Gaoqiang Chen. (2022) Transition of interfacial friction regime and its influence on thermal responses in rotary friction welding of SUS304 stainless steel: A fully coupled transient thermomechanical analysis. Journal of Manufacturing Processes 82, pages 403-414.
Crossref
Md Perwej Iqbal, Rahul Jain, Surjya K. Pal & Parthasarathi Mandal. (2022) Numerical modelling of friction stir welding of pipes: Effect of tool shoulder on mechanical property and metallurgical characterization. Journal of Manufacturing Processes 79, pages 326-339.
Crossref
Yuri Cruz da Silva, Tathiane Caminha Andrade, Francisco José Vieira de Oliveira Júnior, Jorge F. dos Santos, Francisco Marcondes, Helio C. Miranda & Cleiton C. Silva. (2022) Numerical investigation of dissimilar friction stir welding of AISI 304L and 410S stainless steels. The International Journal of Advanced Manufacturing Technology 121:3-4, pages 2721-2733.
Crossref
Jiang Xiaoqing, Jiang Wang, Yuan Tao, Chen Shujun, Wang Lei & Liu Yongyong. (2022) Numerical simulation of the stationary shoulder friction stir welding of Ti-6Al-4V. Journal of Materials Science 57:14, pages 7367-7383.
Crossref
Ebtesam Sharghi & Ali Farzadi. (2021) Simulation of temperature distribution and heat generation during dissimilar friction stir welding of AA6061 aluminum alloy and Al-Mg2Si composite. The International Journal of Advanced Manufacturing Technology 118:9-10, pages 3147-3159.
Crossref
Chenyu Zhao & Xun Liu. (2021) An alternative pressure-dependent velocity boundary condition for modeling self-reacting friction stir welding. The International Journal of Advanced Manufacturing Technology 117:5-6, pages 1601-1613.
Crossref
Yu Wang, Andrew Zang, Yahya Mahmoodkhani, Mary Wells, Warren Poole & Nick Parson. (2021) The Effect of Bridge Geometry on Microstructure and Texture Evolution During Porthole Die Extrusion of an Al–Mg–Si–Mn–Cr Alloy. Metallurgical and Materials Transactions A 52:8, pages 3503-3516.
Crossref
Xue Wang, Yanfei Gao, Xun Liu, Martin McDonnell & Zhili Feng. (2021) Tool-workpiece stick-slip conditions and their effects on torque and heat generation rate in the friction stir welding. Acta Materialia 213, pages 116969.
Crossref
Chunliang Yang, ChuanSong Wu & Song Gao. (2021) Modified constitutive equation by using phase field simulation of dynamic recrystallization in friction stir welding. Journal of Materials Research and Technology 12, pages 916-929.
Crossref
Yiming Qi, Junping Li, Yifu Shen & Wentao Hou. (2020) Simulation and Experimental Study on Temperature and Flow Field in Friction Stir Welding of TC4 Titanium Alloy Process. MATERIALS TRANSACTIONS 61:12, pages 2378-2385.
Crossref
R.M.F. Paulo, F. Rubino, R.A.F. Valente, F. Teixeira-Dias & P. Carlone. (2020) Modelling of friction stir welding and its influence on the structural behaviour of aluminium stiffened panels. Thin-Walled Structures 157, pages 107128.
Crossref
Yuri C. da Silva, Francisco J. V. Oliveira Júnior, Jorge F. dos Santos, Francisco Marcondes & Cleiton Silva. (2020) Numerical investigation of the influence of FSW parameters on the heat and mass transfer of austenitic stainless steels. Welding in the World 64:12, pages 2019-2032.
Crossref
Parisa Pirhayati & Hamed Jamshidi Aval. (2020) Phase-field microstructure simulation during aluminum alloy friction surfacing. Surface and Coatings Technology 402, pages 126496.
Crossref
Avinish Tiwari, Pardeep Pankaj, Saurav Suman & Pankaj Biswas. (2020) CFD Modelling of Temperature Distribution and Material Flow Investigation During FSW of DH36 Shipbuilding Grade Steel. Transactions of the Indian Institute of Metals 73:9, pages 2291-2307.
Crossref
Wenzhen Zhao, ChuanSong Wu & Hao Su. (2020) Numerical investigation of heat generation and plastic deformation in ultrasonic assisted friction stir welding. Journal of Manufacturing Processes 56, pages 967-980.
Crossref
Chunliang Yang, ChuanSong Wu & Lei Shi. (2020) Effect of ultrasonic vibration on dynamic recrystallization in friction stir welding. Journal of Manufacturing Processes 56, pages 87-95.
Crossref
Y. C. Silva, F. J. V. Oliveira Júnior, F. Marcondes & C. C. Silva. (2020) Analysis of viscosity function models used in friction stir welding. Journal of the Brazilian Society of Mechanical Sciences and Engineering 42:8.
Crossref
Vasanthakumar Pandian & Sekar Kannan. (2020) Numerical prediction and experimental investigation of aerospace-grade dissimilar aluminium alloy by friction stir welding. Journal of Manufacturing Processes 54, pages 99-108.
Crossref
N. Neethu, Nahil Ahmed Hassan, Ravi Ranjan Kumar, P. Chakravarthy, A. Srinivasan & A. Muhammed Rijas. (2020) Comparison of Prediction Models for the Hot Deformation Behavior of Cast Mg–Zn–Y Alloy. Transactions of the Indian Institute of Metals 73:6, pages 1619-1628.
Crossref
U. Reisgen, A. Schiebahn, R. Sharma, A. Maslennikov, P. Rabe & V. Erofeev. (2020) A method for evaluating dynamic viscosity of alloys during friction stir welding. Journal of Advanced Joining Processes 1, pages 100002.
Crossref
Xiaonong GuoLei TaoShaojun Zhu & Shaohan Zong. (2020) Experimental Investigation of Mechanical Properties of Aluminum Alloy at High and Low Temperatures. Journal of Materials in Civil Engineering 32:2.
Crossref
Mikhail V. Erpalov & Dmitry A. Pavlov. (2020) The Method of Testing Cylindrical Specimen for Torsion in Order to Determine the Rheological Properties of Materials Sensitive to the Strain Rate. Solid State Phenomena 299, pages 501-507.
Crossref
Dmitry A. Pavlov & Veniamin Chernyh. (2020) Verification of a New Torsion Test Method to Study the Rheological Properties of Materials in a Cold State. Solid State Phenomena 299, pages 363-369.
Crossref
S.V. Sujith & Rahul S. Mulik. (2020) Thermal history analysis and structure-property validation of friction stir welded Al-7079-TiC in-situ metal matrix composites. Journal of Alloys and Compounds 812, pages 152131.
Crossref
Md Perwej Iqbal, Rahul Jain & Surjya K. Pal. (2019) Numerical and experimental study on friction stir welding of aluminum alloy pipe. Journal of Materials Processing Technology 274, pages 116258.
Crossref
Rahul Jain, Surjya K Pal & Shiv B Singh. (2018) Investigation on effect of pin shapes on temperature, material flow and forces during friction stir welding: A simulation study. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 233:9, pages 1980-1992.
Crossref
Yanling Xiang, Sufen Xiao, Zhenghua Tang & Yuhan Zhou. (2019) The flow behavior of homogenizated Al-Mg-Si-La aluminum alloy during hot deformation. Materials Research Express 6:6, pages 066563.
Crossref
Carter Hamilton, Mateusz Kopyściański, Aleksandra Węglowska, Adam Pietras & Stanisław Dymek. (2017) Modeling, microstructure, and mechanical properties of dissimilar 2017A and 5083 aluminum alloys friction stir welds. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 233:2, pages 553-564.
Crossref
Narges Dialami, Miguel Cervera & Michele Chiumenti. (2018) Effect of the Tool Tilt Angle on the Heat Generation and the Material Flow in Friction Stir Welding. Metals 9:1, pages 28.
Crossref
K. C. Le, Y. Piao & T. M. Tran. (2018) Thermodynamic dislocation theory: Torsion of bars. Physical Review E 98:6.
Crossref
Mikhail V. Erpalov & E.A. Kungurov. (2018) Examination of Hardening Curves Definition Methods in Torsion Test. Solid State Phenomena 284, pages 598-604.
Crossref
Jian Liu, Biao Cao & Jingwei Yang. (2018) Modelling intermetallic phase growth during high-power ultrasonic welding of copper and aluminum. Journal of Manufacturing Processes 35, pages 595-603.
Crossref
Gustavo Carr, Diego Santiago, Marcelo Pelayo, Santiago Urquiza, Guillermo Lombera & Oscar Pascal. (2018) Study of friction stir spot welding on AA6063 aluminium alloy used in the ship building industry. Matéria (Rio de Janeiro) 23:2.
Crossref
Shuai Zhang, Gaoqiang Chen, Qu Liu, Han Li, Gong Zhang, Guoqing Wang & Qingyu Shi. (2018) Numerical analysis and analytical modeling of the spatial distribution of heat flux during friction stir welding. Journal of Manufacturing Processes 33, pages 245-255.
Crossref
E. Sharghi & A. Farzadi. (2018) Simulation of strain rate, material flow, and nugget shape during dissimilar friction stir welding of AA6061 aluminum alloy and Al-Mg2Si composite. Journal of Alloys and Compounds 748, pages 953-960.
Crossref
Rahul Jain, Kanchan Kumari, Surjya K. Pal & Shiv B. Singh. (2018) Counter rotating twin-tool system in friction stir welding process: A simulation study. Journal of Materials Processing Technology 255, pages 121-128.
Crossref
Jian-Yi Pan & Xin Xue. (2017) Numerical investigation of an arc inlet structure extrusion die for large hollow sections. International Journal of Material Forming 11:3, pages 405-416.
Crossref
Kai Zhang, Knut Marthinsen, Bjørn Holmedal, Trond Aukrust & Antonio Segatori. (2018) Through thickness variations of deformation texture in round profile extrusions of 6063-type aluminium alloy: Experiments, FEM and crystal plasticity modelling. Materials Science and Engineering: A 722, pages 20-29.
Crossref
Peihao Geng, Guoliang Qin, Jun Zhou & Zengda Zou. (2018) Hot deformation behavior and constitutive model of GH4169 superalloy for linear friction welding process. Journal of Manufacturing Processes 32, pages 469-481.
Crossref
C.L. Yang, C.S. Wu & X.Q. Lv. (2018) Numerical analysis of mass transfer and material mixing in friction stir welding of aluminum/magnesium alloys. Journal of Manufacturing Processes 32, pages 380-394.
Crossref
Narges Dialami, Miguel Cervera & Michele Chiumenti. (2018) Numerical Modelling of Microstructure Evolution in Friction Stir Welding (FSW). Metals 8:3, pages 183.
Crossref
H. Zhang, X. Li, X. Deng, A.P. Reynolds & M.A. Sutton. (2018) Numerical simulation of friction extrusion process. Journal of Materials Processing Technology 253, pages 17-26.
Crossref
X.C. Liu, Y.F. Sun, Y. Morisada & H. Fujii. (2018) Dynamics of rotational flow in friction stir welding of aluminium alloys. Journal of Materials Processing Technology 252, pages 643-651.
Crossref
Thomas Dorin, Mahendra Ramajayam, Katrin Mester, Baptiste Rouxel, Justin Lamb & Timothy J. Langan. 2018. Light Metals 2018. Light Metals 2018 1595 1599 .
Ling Long, Gaoqiang Chen, Shuai Zhang, Tie Liu & Qingyu Shi. (2017) Finite-element analysis of the tool tilt angle effect on the formation of friction stir welds. Journal of Manufacturing Processes 30, pages 562-569.
Crossref
Su-Deok Kim, Jin-Young Yoon & Suck-Joo Na. (2017) A study on the characteristics of FSW tool shapes based on CFD analysis. Welding in the World 61:5, pages 915-926.
Crossref
Xun Liu, Gaoqiang Chen, Jun Ni & Zhili Feng. (2017) Computational Fluid Dynamics Modeling on Steady-State Friction Stir Welding of Aluminum Alloy 6061 to TRIP Steel. Journal of Manufacturing Science and Engineering 139:5.
Crossref
I. Kalemba-Rec, C. Hamilton, M. Kopyściański, D. Miara & K. Krasnowski. (2017) Microstructure and Mechanical Properties of Friction Stir Welded 5083 and 7075 Aluminum Alloys. Journal of Materials Engineering and Performance 26:3, pages 1032-1043.
Crossref
Peng Li, Jinglong Li & Honggang Dong. (2017) Analytical description of heat generation and temperature field during the initial stage of rotary friction welding. Journal of Manufacturing Processes 25, pages 181-184.
Crossref
Rahul Jain, Surjya K. Pal & Shiv B. Singh. 2017. Computational Methods and Production Engineering. Computational Methods and Production Engineering 125 169 .
N. Dialami, M. Chiumenti, M. Cervera & C. Agelet de Saracibar. (2016) Challenges in Thermo-mechanical Analysis of Friction Stir Welding Processes. Archives of Computational Methods in Engineering 24:1, pages 189-225.
Crossref
Yucan Zhu, Gaoqiang Chen, Qilong Chen, Gong Zhang & Qingyu Shi. (2016) Simulation of material plastic flow driven by non-uniform friction force during friction stir welding and related defect prediction. Materials & Design 108, pages 400-410.
Crossref
L. Shi, C.S. Wu, G.K. Padhy & S. Gao. (2016) Numerical simulation of ultrasonic field and its acoustoplastic influence on friction stir welding. Materials & Design 104, pages 102-115.
Crossref
M. E. Aalami-Aleagha, Behzad Hadi & Mohammad Ali Shahbazi. (2016) 3-dimensional numerical analysis of friction stir welding of copper and aluminum. Journal of Mechanical Science and Technology 30:8, pages 3767-3776.
Crossref
L. Shi, C.S. Wu, S. Gao & G.K. Padhy. (2016) Modified constitutive equation for use in modeling the ultrasonic vibration enhanced friction stir welding process. Scripta Materialia 119, pages 21-26.
Crossref
Su-Deok Kim & Suck-Joo Na. (2016) A study on an Interface Tracking Algorithm in Friction Stir Welding based on Computational Fluid Dynamics Analysis. Journal of Welding and Joining 34:3, pages 12-16.
Crossref
Hoon-Hwe Cho, Dong-Wan Kim, Sung-Tae Hong, Yong-Ha Jeong, Keunho Lee, Yi-Gil Cho, Suk Hoon Kang & Heung Nam Han. (2015) Three-Dimensional Numerical Model Considering Phase Transformation in Friction Stir Welding of Steel. Metallurgical and Materials Transactions A 46:12, pages 6040-6051.
Crossref
L. Shi, C.S. Wu & X.C. Liu. (2015) Modeling the effects of ultrasonic vibration on friction stir welding. Journal of Materials Processing Technology 222, pages 91-102.
Crossref
Carter Hamilton, Marek Stanisław Węglowski & Stanisław Dymek. (2015) A Simulation of Friction-Stir Processing for Temperature and Material Flow. Metallurgical and Materials Transactions B 46:3, pages 1409-1418.
Crossref
C. Hamilton, M. St. Węglowski, S. Dymek & P. Sedek. (2015) Using a Coupled Thermal/Material Flow Model to Predict Residual Stress in Friction Stir Processed AlMg9Si. Journal of Materials Engineering and Performance 24:3, pages 1305-1312.
Crossref
Gaoqiang Chen, Qingyu Shi & Zhili Feng. 2015. Friction Stir Welding and Processing VIII. Friction Stir Welding and Processing VIII 251 258 .
Kai Zhang, Knut Marthinsen, Bjørn Holmedal, Trond Aukrust & Antonio Segatori. (2015) Coupled FEM and Alamel-type Polycrystal Plasticity Modelling Applied to Extrusion of Aluminium Alloys. Materials Today: Proceedings 2:10, pages 4898-4903.
Crossref
Gaoqiang Chen, Qingyu Shi & Zhili Feng. 2016. Friction Stir Welding and Processing VIII. Friction Stir Welding and Processing VIII 251 258 .
H. Zhang, X. Deng, X. Li, W. Tang, A. P. Reynolds & M. A. Sutton. 2015. Challenges in Mechanics of Time-Dependent Materials, Volume 2. Challenges in Mechanics of Time-Dependent Materials, Volume 2 187 196 .
L. Shi, C. S. Wu & H. J. Liu. (2014) Numerical analysis of heat generation and temperature field in reverse dual-rotation friction stir welding. The International Journal of Advanced Manufacturing Technology 74:1-4, pages 319-334.
Crossref
Izabela Kalemba, Carter Hamilton & Stanislaw Dymek. (2014) Natural aging in friction stir welded 7136-T76 aluminum alloy. Materials & Design 60, pages 295-301.
Crossref
Jingqing Zhang, Yifu Shen, Bo Li, Haisheng Xu, Xin Yao, Binbin Kuang & Jicheng Gao. (2014) Numerical simulation and experimental investigation on friction stir welding of 6061-T6 aluminum alloy. Materials & Design 60, pages 94-101.
Crossref
H. Zhang, X. Zhao, X. Deng, M.A. Sutton, A.P. Reynolds, S.R. McNeill & X. Ke. (2014) Investigation of material flow during friction extrusion process. International Journal of Mechanical Sciences 85, pages 130-141.
Crossref
G. Q. Chen, Q. Y. Shi, Y. Fujiya & T. Horie. (2014) Simulation of Metal Flow During Friction Stir Welding Based on the Model of Interactive Force Between Tool and Material. Journal of Materials Engineering and Performance 23:4, pages 1321-1328.
Crossref
M. Nourani, A. Milani, S. Yannacopoulos & C. Yan. (2014) An integrated multiphysics model for friction stir welding of 6061 Aluminum alloy. The International Journal of Multiphysics 8:1, pages 29-48.
Crossref
A. Roth, T. Hake & M.F. Zaeh. (2014) An Analytical Approach of Modelling Friction Stir Welding. Procedia CIRP 18, pages 197-202.
Crossref
Ling Ou, Yufeng Nie & Ziqiao Zheng. (2013) Strain Compensation of the Constitutive Equation for High Temperature Flow Stress of a Al-Cu-Li Alloy. Journal of Materials Engineering and Performance 23:1, pages 25-30.
Crossref
Isaac Flitta, Thomas Hatzenbichler & Bruno Buchmayr. (2013) Investigation and Comparison of Heat Transfers Analysis Used in Commercial FEM for Metal Forming<sup><sup><sup></sup></sup></sup>. Materials Science Forum 773-774, pages 176-185.
Crossref
Katherine Kuykendall, Tracy Nelson & Carl Sorensen. (2013) On the selection of constitutive laws used in modeling friction stir welding. International Journal of Machine Tools and Manufacture 74, pages 74-85.
Crossref
Gao-qiang Chen, Qing-yu Shi, Yu-jia Li, Yan-jun Sun, Qi-lei Dai, Jin-yao Jia, Yu-can Zhu & Jian-jun Wu. (2013) Computational fluid dynamics studies on heat generation during friction stir welding of aluminum alloy. Computational Materials Science 79, pages 540-546.
Crossref
Mohamadreza Nourani, Abbas S. Milani, Spiro Yannacopoulos & Claire Yu Yan. (2013) Predicting Residual Stresses in Friction Stir Welding of Aluminum Alloy 6061 Using an Integrated Multiphysics Model. Materials Science Forum 768-769, pages 682-689.
Crossref
Pierpaolo Carlone & Gaetano S. Palazzo. (2013) Influence of Process Parameters on Microstructure and Mechanical Properties in AA2024-T3 Friction Stir Welding. Metallography, Microstructure, and Analysis 2:4, pages 213-222.
Crossref
Hoon-Hwe Cho, Sung-Tae Hong, Jae-Hun Roh, Hyun-Sik Choi, Suk Hoon Kang, Russell J. Steel & Heung Nam Han. (2013) Three-dimensional numerical and experimental investigation on friction stir welding processes of ferritic stainless steel. Acta Materialia 61:7, pages 2649-2661.
Crossref
Carter Hamilton, Mateusz Kopyściański, Oleg Senkov & Stanislaw Dymek. (2012) A Coupled Thermal/Material Flow Model of Friction Stir Welding Applied to Sc-Modified Aluminum Alloys. Metallurgical and Materials Transactions A 44:4, pages 1730-1740.
Crossref
J.T. Xiong, J.L. Li, Y.N. Wei, F.S. Zhang & W.D. Huang. (2013) An analytical model of steady-state continuous drive friction welding. Acta Materialia 61:5, pages 1662-1675.
Crossref
Fredrik Widerøe, Torgeir Welo & Harald Vestøl. (2011) A new testing machine to determine the behaviour of aluminium granulate under combined pressure and shear. International Journal of Material Forming 6:1, pages 199-208.
Crossref
Jinwen Qian, Jinglong Li, Fu Sun, Jiangtao Xiong, Fusheng Zhang & Xin Lin. (2013) An analytical model to optimize rotation speed and travel speed of friction stir welding for defect-free joints. Scripta Materialia 68:3-4, pages 175-178.
Crossref
M. Chiumenti, M. Cervera, C. Agelet de Saracibar & N. Dialami. (2013) Numerical modeling of friction stir welding processes. Computer Methods in Applied Mechanics and Engineering 254, pages 353-369.
Crossref
C. Hamilton, M. Kopyściański, O. Senkov & S. Dymek. 2013. Friction Stir Welding and Processing VII. Friction Stir Welding and Processing VII 329 338 .
C. Hamilton, M. Kopyściański, O. Senkov & S. Dymek. 2016. Friction Stir Welding and Processing VII. Friction Stir Welding and Processing VII 329 338 .
Sharif Aljoaba, Oscar DillonJr.Jr., Marwan Khraisheh & I. S. Jawahir. (2011) Modeling the Effects of Coolant Application in Friction Stir Processing on Material Microstructure Using 3D CFD Analysis. Journal of Materials Engineering and Performance 21:7, pages 1141-1150.
Crossref
Chuan-song WU, Wen-bin ZHANG, Lei SHI & Mao-ai CHEN. (2012) Visualization and simulation of plastic material flow in friction stir welding of 2024 aluminium alloy plates. Transactions of Nonferrous Metals Society of China 22:6, pages 1445-1451.
Crossref
A. Simar, Y. Bréchet, B. de Meester, A. Denquin, C. Gallais & T. Pardoen. (2012) Integrated modeling of friction stir welding of 6xxx series Al alloys: Process, microstructure and properties. Progress in Materials Science 57:1, pages 95-183.
Crossref
San-Bao Lin, Yan-Hua Zhao, Zi-Qiu He & Lin Wu. (2011) Modeling of friction stir welding process for tools design. Frontiers of Materials Science 5:2, pages 236-245.
Crossref
S. Khoddam, P.D. Hodgson & M. Jafari Bahramabadi. (2011) An inverse thermal–mechanical analysis of the hot torsion test for calibrating the constitutive parameters. Materials & Design 32:4, pages 1903-1909.
Crossref
Katherine Kuykendall, Carl Sorensen & Tracy Nelson. 2011. Friction Stir Welding and Processing VI. Friction Stir Welding and Processing VI 353 361 .
S. Cui, Z.W. Chen & J.D. Robson. (2010) A model relating tool torque and its associated power and specific energy to rotation and forward speeds during friction stir welding/processing. International Journal of Machine Tools and Manufacture 50:12, pages 1023-1030.
Crossref
L. Wang, Y. He, Y. Zhang, J. Cai, J. Zhou, J. Duszczyk & L. Katgerman. (2010) Modeling of double action extrusion—A novel extrusion process for friction characterization at the billet–die bearing interface. Tribology International 43:11, pages 2084-2091.
Crossref
S. Khoddam & P.D. Hodgson. (2010) Post processing of the hot torsion test results using a multi-dimensional modelling approach. Materials & Design (1980-2015) 31:5, pages 2578-2584.
Crossref
R. Zettler. 2010. Friction Stir Welding. Friction Stir Welding 42 72 .
D.H. Lammlein, D.R. DeLapp, P.A. Fleming, A.M. Strauss & G.E. Cook. (2009) The application of shoulderless conical tools in friction stir welding: An experimental and theoretical study. Materials & Design 30:10, pages 4012-4022.
Crossref
Diego Santiago, Santiago Urquiza, Guillermo Lombera & Luis de Vedia. (2009) 3D modeling of material flow and temperature in Friction Stir Welding. Soldagem & Inspeção 14:3, pages 248-256.
Crossref
S. Z. Aljoaba, I. S. Jawahir, O. W. DillonJrJr, M. H. Ali & M. K. Khraisheh. (2009) Modeling of friction stir processing using 3D CFD analysis. International Journal of Material Forming 2:S1.
Crossref
Hosein Atharifar, Dechao Lin & Radovan Kovacevic. (2009) Numerical and Experimental Investigations on the Loads Carried by the Tool During Friction Stir Welding. Journal of Materials Engineering and Performance 18:4, pages 339-350.
Crossref
A. Bastier, M.H. Maitournam, F. Roger & K. Dang Van. (2008) Modelling of the residual state of friction stir welded plates. Journal of Materials Processing Technology 200:1-3, pages 25-37.
Crossref
R. Nandan, T. J. Lienert & T. DebRoy. (2008) Toward reliable calculations of heat and plastic flow during friction stir welding of Ti-6Al-4V alloy. International Journal of Materials Research 99:4, pages 434-444.
Crossref
R. Nandan, G.G. Roy, T.J. Lienert & T. Debroy. (2007) Three-dimensional heat and material flow during friction stir welding of mild steel. Acta Materialia 55:3, pages 883-895.
Crossref
R. Nandan, G. G. Roy & T. Debroy. (2006) Numerical simulation of three-dimensional heat transfer and plastic flow during friction stir welding. Metallurgical and Materials Transactions A 37:4, pages 1247-1259.
Crossref
S. F. Harnish, H. A. Padilla, J. A. Dantzig, A. J. Beaudoin, B. E. Gore, I. M. Robertson & H. Weiland. (2005) High-temperature mechanical behavior and hot rolling of AA705X. Metallurgical and Materials Transactions A 36:2, pages 357-369.
Crossref
Diego H. Santiago, Guillermo Lombera, Santiago Urquiza, Anibal Cassanelli & Luis A. de Vedia. (2004) Numerical modeling of welded joints by the "Friction Stir Welding" process. Materials Research 7:4, pages 569-574.
Crossref
T. U. Seidel & A. P. Reynolds. (2013) Two-dimensional friction stir welding process model based on fluid mechanics. Science and Technology of Welding and Joining 8:3, pages 175-183.
Crossref
L.X Li, Y Lou, L.B Yang, D.S Peng & K.P Rao. (2002) Flow stress behavior and deformation characteristics of Ti-3Al-5V-5Mo compressed at elevated temperatures. Materials & Design 23:5, pages 451-457.
Crossref
Sami LaZghab, Trond Aukrust & Kjell Holthe. (2002) Adaptive exponential finite elements for the shear boundary layer in the bearing channel during extrusion. Computer Methods in Applied Mechanics and Engineering 191:11-12, pages 1113-1128.
Crossref
Trond Aukrust & Sami LaZghab. (2000) Thin shear boundary layers in flow of hot aluminium. International Journal of Plasticity 16:1, pages 59-71.
Crossref
Terry SheppardTerry Sheppard. 1999. Extrusion of Aluminium Alloys. Extrusion of Aluminium Alloys 24 68 .
M Zhou & M.P Clode. (1998) A finite element analysis for the least temperature rise in a hot torsion test specimen. Finite Elements in Analysis and Design 31:1, pages 1-14.
Crossref
M Zhou & M.P Clode. (1998) Constitutive equations for modelling flow softening due to dynamic recovery and heat generation during plastic deformation. Mechanics of Materials 27:2, pages 63-76.
Crossref
M. Zhou & M.P. Clode. (1998) Thermal analysis of the torsion test under hot-working conditions. Computational Materials Science 9:3-4, pages 411-419.
Crossref
C.H.J. Davies, E.B. Hawbolt, I.V. Samarasekera & J.K. Brimacombe. (1997) Constitutive behaviour of composites of AA6061 and alumina. Journal of Materials Processing Technology 70:1-3, pages 244-251.
Crossref
M. ZhouM. P. Clode. (1997) A Constitutive Model and Its Identification for the Deformation Characterized by Dynamic Recovery. Journal of Engineering Materials and Technology 119:2, pages 138-142.
Crossref
W. C. Chen, C. H. J. Davies, I. V. Samarasekera, J. K. Brimacombe & E. B. Hawbolt. (1996) Mathematical modeling of the extrusion of 6061/Al2O3/20p composite. Metallurgical and Materials Transactions A 27:12, pages 4095-4111.
Crossref
D. Duly, G.J. Baxter, H.R. Shercliff, J.A. Whiteman, C.M. Sellars & M.F. Ashby. (1996) Microstructure and local crystallographic evolution in an Al1 wt% Mg alloy deformed at intermediate temperature and high strain-rate. Acta Materialia 44:7, pages 2947-2962.
Crossref
G Sigworth. (1996) Rheological properties of metal alloys in the semi-solid state. Canadian Metallurgical Quarterly 35:2, pages 101-122.
Crossref
M. Zhou & M.P. Clode. (1996) Effects of specimen geometry on temperature rise and flow behavior of aluminium alloys in hot torsion testing. Materials & Design 17:5-6, pages 275-281.
Crossref
N. Ravichandran & Y. V. R. K. Prasad. (1991) Dynamic recrystallization during hot deformation of aluminum: A study using processing maps. Metallurgical Transactions A 22:10, pages 2339-2348.
Crossref
Minoru Nobuki, Kenki Hashimoto, Junji Takahashi & Tokuzou Tsujimoto. (1990) Deformation of Cast TiAl Intermetallic Compound at Elevated Temperatures. Materials Transactions, JIM 31:9, pages 814-819.
Crossref
M.E. Karabin & R.E. Smelser. (1990) A quasi-three-dimensional analysis of the deformation processing of sheets with applications. International Journal of Mechanical Sciences 32:5, pages 375-389.
Crossref
Klaus PöhlandtKlaus Pöhlandt. 1989. Materials Testing for the Metal Forming Industry. Materials Testing for the Metal Forming Industry 10 85 .
J. Zhou & J. Duszczyk. (1988) Extrusion of an aluminum alloy prepared from rapidly solidified powder. Journal of Materials Shaping Technology 6:4, pages 241-250.
Crossref
P. Olla & P. F. Virdis. (1987) High temperature deformation of a commercial aluminum alloy. Metallurgical Transactions A 18:2, pages 293-301.
Crossref
Paul R. Dawson. (1987) On modeling of mechanical property changes during flat rolling of aluminum. International Journal of Solids and Structures 23:7, pages 947-968.
Crossref
M. Heinlein, S. Mukherjee & O. Richmond. (1986) A boundary element method analysis of temperature fields and stresses during solidification. Acta Mechanica 59:1-2, pages 59-81.
Crossref
K.P. Rao & Y.V.R.K. Prasad. (1986) High temperature deformation kinetics of Al—4Mg alloy. Journal of Mechanical Working Technology 13:1, pages 83-95.
Crossref
Klaus PöhlandtKlaus Pöhlandt. 1986. Werkstoffprüfung für die Umformtechnik. Werkstoffprüfung für die Umformtechnik 10 87 .
K. P. Rao, S. M. Doraivelu & Y. V. R. K. Prasad. (1985) Deformation Behaviour of Al-5%Si Alloy at High Temperatures and Different Strain Rates. Transactions of the Japan Institute of Metals 26:6, pages 390-396.
Crossref
H.B. McShane & T. Sheppard. (1984) On the elevated-temperature constitutive relationship and structure of an austenitic stainless steel. Journal of Mechanical Working Technology 9:2, pages 147-160.
Crossref
Paul R. Dawson. (1984) A model for the hot or warm forming of metals with special use of deformation mechanism maps. International Journal of Mechanical Sciences 26:4, pages 227-244.
Crossref
Klaus PöhlandtKlaus Pöhlandt. 1984. Vergleichende Betrachtung der Verfahren zur Prüfung der plastischen Eigenschaften metallischer Werkstoffe. Vergleichende Betrachtung der Verfahren zur Prüfung der plastischen Eigenschaften metallischer Werkstoffe 155 176 .
T. Sheppard, P.J. Tunnicliffe & S.J. Patterson. (1982) Direct and indirect extrusion of a high strength aerospace alloy (AA 7075). Journal of Mechanical Working Technology 6:4, pages 313-331.
Crossref
K.P. Rao, S.M. Doraivelu & V. Gopinathan. (1982) Flow curves and deformation of materials at different temperatures and strain rates. Journal of Mechanical Working Technology 6:1, pages 63-88.
Crossref
Erik G. Thompson. (1982) Inclusion of elastic strain rate in the analysis of viscoplastic flow during rolling. International Journal of Mechanical Sciences 24:11, pages 655-659.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.