Analysis of friction stir welds using numerical modelling approach: a comprehensive review
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C. Prakash | N. Jeyaprakash | Yogita Sharma | Hitesh Vasudev | Gaurav Prashar | Amrinder Mehta | N. Jeyaprakash
[1] Gurbhej Singh,et al. Efficient surface detection for assisting Collaborative Robots , 2022, Robotics Auton. Syst..
[2] D. Hattingh,et al. Microstructure evolution and high cycle fatigue failure behavior of friction stir-welded Ti–6Al–4V at varying welding speeds , 2022, The International Journal of Advanced Manufacturing Technology.
[3] C. Prakash,et al. Processing and Advancements in the Development of Thermal Barrier Coatings: A Review , 2022, Coatings.
[4] H. Su,et al. Numerical simulation for the comparison of thermal and plastic material flow behavior between symmetrical and asymmetrical boundary conditions during friction stir welding , 2022, Advances in Manufacturing.
[5] A. Shettigar,et al. A Comprehensive Review of Friction Stir Techniques in Structural Materials and Alloys: Challenges and Trends , 2022, Journal of Materials Research and Technology.
[6] B. S. Roy,et al. Recent progress in solid-state additive manufacturing technique: Friction stir additive manufacturing , 2022, Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering.
[7] Yongxian Huang,et al. Entire-Process Simulation of Friction Stir Welding — Part 2: Implementation of Neural Networks , 2022, Welding Journal.
[8] Yu Sun,et al. Numerical and experimental study on the thermal process, material flow and welding defects during high-speed friction stir welding , 2022, Materials Today Communications.
[9] H. Su,et al. Effect of tool eccentricity on the periodic material flow in friction stir welding process , 2022, International Journal of Mechanical Sciences.
[10] A. Kubit,et al. Effects of Underwater Friction Stir Welding Heat Generation on Residual Stress of AA6068-T6 Aluminum Alloy , 2022, Materials.
[11] P. Biswas,et al. Current status and development of external energy-assisted friction stir welding processes: a review , 2022, Welding in the World.
[12] H. Fujii,et al. Effects of rotation tool-induced heat and material flow behaviour on friction stir lapped Al/steel joint formation and resultant microstructure , 2022, International Journal of Machine Tools and Manufacture.
[13] S. Selvaraj,et al. A Survey of Machine Learning in Friction Stir Welding, including Unresolved Issues and Future Research Directions , 2022 .
[14] M. C. Serna,et al. Basic Tool Design Guidelines for Friction Stir Welding of Aluminum Alloys , 2021, Metals.
[15] U. Reisgen,et al. Deep Learning approaches for force feedback based void defect detection in Friction Stir welding , 2021, Journal of Advanced Joining Processes.
[16] N. Lebaal,et al. Robust Optimization of Both Dissolution Time and Heat Affected Zone Over the Friction Stir Welding Process Using SQP Technique , 2021, Experimental Techniques.
[17] Assefa Asmare Tsegaw,et al. Temperature-based optimization of friction stir welding of AA 6061 using GRA synchronous with Taguchi method , 2021, The International Journal of Advanced Manufacturing Technology.
[18] Sunpreet Singh,et al. Revealing the WEDM Process Parameters for the Machining of Pure and Heat-Treated Titanium (Ti-6Al-4V) Alloy , 2021, Materials.
[19] S. Ramakrishna,et al. Mechanical Reliability and In Vitro Bioactivity of 3D-Printed Porous Polylactic Acid-Hydroxyapatite Scaffold , 2021, Journal of Materials Engineering and Performance.
[20] J. P. Misra,et al. Prediction of tensile behavior of FS welded AA7039 using machine learning , 2021 .
[21] P. Sevvel,et al. Development of Thermo Mechanical Model for Prediction of Temperature Diffusion in Different FSW Tool Pin Geometries During Joining of AZ80A Mg Alloys , 2021, Journal of Inorganic and Organometallic Polymers and Materials.
[22] P. Asadi,et al. Modeling of material flow in dissimilar friction stir lap welding of aluminum and brass using coupled Eulerian and Lagrangian method , 2021, The International Journal of Advanced Manufacturing Technology.
[23] F. Musharavati,et al. Underwater friction stir welding of Al-Mg alloy: Thermo-mechanical modeling and validation , 2020 .
[24] Yasin Sarikavak. An advanced modelling to improve the prediction of thermal distribution in friction stir welding (FSW) for difficult to weld materials , 2020, Journal of the Brazilian Society of Mechanical Sciences and Engineering.
[25] Ji-hoon Kim,et al. Probing the Mechanism of Friction Stir Welding with ALE Based Finite Element Simulations and Its Application to Strength Prediction of Welded Aluminum , 2020, Metals and Materials International.
[26] H. Su,et al. Influence of tool tilt angle on heat transfer and material flow in friction stir welding , 2020 .
[27] Surjya K. Pal,et al. Numerical modelling of microstructure in friction stir welding of aluminium alloys , 2020 .
[28] Grzegorz Krolczyk,et al. Multi-objective optimization of drilling parameters for orthopaedic implants , 2020 .
[29] Joy Prakash Misra,et al. Modeling of friction stir welding of aviation grade aluminium alloy using machine learning approaches , 2020, International Journal of Modelling and Simulation.
[30] S. Ramakrishna,et al. Three-dimensional printing in the fight against novel virus COVID-19: Technology helping society during an infectious disease pandemic , 2020, Technology in Society.
[31] S. Ramakrishna,et al. Surface Characteristics of Machined Polystyrene with 3D Printed Thermoplastic Tool , 2020, Materials.
[32] D. Solyali,et al. Applications of Machine Learning to Friction Stir Welding Process Optimization , 2020, Jurnal Kejuruteraan.
[33] Thanh-Phong Dao,et al. Machining parameter optimization in shear thickening polishing of gear surfaces , 2020 .
[34] F. Sergejev,et al. Performance of Ceramic-Metal Composites as Potential Tool Materials for Friction Stir Welding of Aluminium, Copper and Stainless Steel , 2020, Materials.
[35] M. Cervera,et al. Defect formation and material flow in Friction Stir Welding , 2020, European Journal of Mechanics - A/Solids.
[36] Surjya K. Pal,et al. Friction stir lap welding of AA6061 aluminium alloy with a graphene interlayer , 2020 .
[37] L. Lamberti,et al. Processing of Ti50Nb50−xHAx composites by rapid microwave sintering technique for biomedical applications , 2020, Journal of Materials Research and Technology.
[38] Akshansh Mishra,et al. Machine Learning Approach for Defects Identification in Dissimilar Friction Stir Welded Aluminium Alloys AA 7075-AA 1100 Joints , 2020 .
[39] Surjya K. Pal,et al. Enhancement of joint strength in friction stir lap welding between AA6061 and AISI 304 by adding diffusive coating agents , 2020, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture.
[40] Z. Zhang,et al. Experimental and numerical studies of re-stirring and re-heating effects on mechanical properties in friction stir additive manufacturing , 2019, The International Journal of Advanced Manufacturing Technology.
[41] C. Prakash,et al. Deformation and strengthening of SiC reinforced Al-MMCs during in-situ micro-pillar compression , 2019, Materials Science and Engineering: A.
[42] A. Korsunsky,et al. Transverse fatigue behaviour and residual stress analyses of double sided FSW aluminium alloy joints , 2019, Fatigue & Fracture of Engineering Materials & Structures.
[43] Sunpreet Singh,et al. Dimensionless Analysis for Investigating the Quality Characteristics of Aluminium Matrix Composites Prepared through Fused Deposition Modelling Assisted Investment Casting , 2019, Materials.
[44] A. Pramanik,et al. Understanding the wire electrical discharge machining of Ti6Al4V alloy , 2019, Heliyon.
[45] Surjya K. Pal,et al. Interfacial Microstructural and Corrosion Characterizations of Friction Stir Welded AA6061-T6 and AISI304 Materials , 2018, Metals and Materials International.
[46] N. Kashaev,et al. Prospects of laser beam welding and friction stir welding processes for aluminum airframe structural applications , 2018, Journal of Manufacturing Processes.
[47] Harmeet Singh,et al. Review on friction stir welding of magnesium alloys , 2018, Journal of Magnesium and Alloys.
[48] Mozammel Mia,et al. Multi-objective parametric appraisal of pulsed current gas tungsten arc welding process by using hybrid optimization algorithms , 2018, The International Journal of Advanced Manufacturing Technology.
[49] Surjya K. Pal,et al. Investigation on effect of pin shapes on temperature, material flow and forces during friction stir welding: A simulation study , 2018, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture.
[50] J. P. Misra,et al. Performance evaluation of friction stir welding using machine learning approaches , 2018, MethodsX.
[51] B. S. Pabla,et al. Bio-inspired low elastic biodegradable Mg-Zn-Mn-Si-HA alloy fabricated by spark plasma sintering , 2018, Materials and Manufacturing Processes.
[52] Sunpreet Singh,et al. Synthesis, Characterization, Corrosion Resistance and In-Vitro Bioactivity Behavior of Biodegradable Mg–Zn–Mn–(Si–HA) Composite for Orthopaedic Applications , 2018, Materials.
[53] Yongxian Huang,et al. Friction stir welding of dissimilar aluminum alloys and steels: a review , 2018, The International Journal of Advanced Manufacturing Technology.
[54] Ji-cai Feng,et al. Friction stir welding/processing of polymers and polymer matrix composites , 2018 .
[55] M. Awang,et al. Prediction of the Temperature Distribution During Friction Stir Welding (Fsw) With A Complex Curved Welding Seam: Application In The Automotive Industry , 2018 .
[56] Surjya K. Pal,et al. A comprehensive study on force, temperature, mechanical properties and micro-structural characterizations in friction stir lap welding of dissimilar materials (AA6061-T6 & AISI304) , 2018 .
[57] C. Sorensen,et al. A review of friction stir welding of steels: tool, material flow, microstructure, and properties , 2017 .
[58] R. Nagarajan,et al. Outburst susceptibility assessment of moraine‐dammed lakes in Western Himalaya using an analytic hierarchy process , 2017 .
[59] Srinivasa Rao Pedapati,et al. A Comparison of Different Finite Element Methods in the Thermal Analysis of Friction Stir Welding (FSW) , 2017 .
[60] P. Asadi,et al. A cellular automaton model for microstructural simulation of friction stir welded AZ91 magnesium alloy , 2016 .
[61] R. G. Narayanan,et al. Prediction of microstructural features and forming of friction stir welded sheets using cellular automata finite element (CAFE) approach , 2016 .
[62] M. Grujicic,et al. Monte Carlo simulation of grain growth and welding zones in friction stir welding of AA6082-T6 , 2016, Journal of Materials Science.
[63] Neil A. Duffie,et al. Physics-based process model approach for detecting discontinuity during friction stir welding , 2015 .
[64] M. Shojaeefard,et al. Optimization of microstructural and mechanical properties of friction stir welding using the cellular automaton and Taguchi method , 2014 .
[65] Mohammad Hassan Shojaeefard,et al. Multi objective optimization of friction stir welding parameters using FEM and neural network , 2014, International Journal of Precision Engineering and Manufacturing.
[66] C. Wu,et al. Modeling the Material Flow and Heat Transfer in Reverse Dual-Rotation Friction Stir Welding , 2014, Journal of Materials Engineering and Performance.
[67] Tracie Prater,et al. Friction Stir Welding of Metal Matrix Composites for use in aerospace structures , 2014 .
[68] Alexandre M. Tartakovsky,et al. A new smoothed particle hydrodynamics non-Newtonian model for friction stir welding: Process modeling and simulation of microstructure evolution in a magnesium alloy , 2013 .
[69] D. M. Neto,et al. Numerical modeling of friction stir welding process: a literature review , 2013, ArXiv.
[70] L. Madej,et al. A perceptive comparison of the cellular automata and Monte Carlo techniques in application to static recrystallization modeling in polycrystalline materials , 2013 .
[71] Sumitesh Das,et al. Cellular automata finite element (CAFE) model to predict the forming of friction stir welded blanks , 2012 .
[72] M. K. Besharati Givi,et al. Mechanical Properties, Corrosion Resistance, and Microstructural Changes during Friction Stir Processing of 5083 Aluminum Rolled Plates , 2012 .
[73] B. Xiao,et al. Effects of Rotation Rates on Microstructure, Mechanical Properties, and Fracture Behavior of Friction Stir-Welded (FSW) AZ31 Magnesium Alloy , 2012, Metallurgical and Materials Transactions A.
[74] Thomas Pardoen,et al. Integrated modeling of friction stir welding of 6xxx series Al alloys: Process, microstructure and properties , 2012 .
[75] P. Asadi,et al. Effects of SiC Particle Size and Process Parameters on the Microstructure and Hardness of AZ91/SiC Composite Layer Fabricated by FSP , 2011 .
[76] Livan Fratini,et al. Finite element studies on friction stir welding processes of tailored blanks , 2008 .
[77] L. Geng,et al. Development of a fine-grained microstructure and the properties of a nugget zone in friction stir welded pure copper , 2007 .
[78] Arthur C. Nunes,et al. Interfacial sticking and slipping in the friction stir welding process , 2006 .
[79] Wang Xun-hong,et al. Microstructure and properties of friction stir butt-welded AZ31 magnesium alloy , 2006 .
[80] H. Fujii,et al. Friction stir welding of Inconel alloy 600 , 2006 .
[81] Young Gon Kim,et al. Three defect types in friction stir welding of aluminum die casting alloy , 2006 .
[82] Livan Fratini,et al. CDRX modelling in friction stir welding of aluminium alloys , 2005 .
[83] S. Jung,et al. The joint properties of copper by friction stir welding , 2004 .
[84] Z. Guo,et al. Cellular automata simulation of microstructural evolution during dynamic recrystallization of an HY-100 steel , 2004 .
[85] Jesper Henri Hattel,et al. An analytical model for the heat generation in friction stir welding , 2004 .
[86] Rajiv S. Mishra,et al. Friction Stir Welding and Processing , 2007 .