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Articles

Two-dimensional CFD modelling of flow round profiled FSW tooling

Pages 483-492 | Published online: 04 Dec 2013

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L. H. Shah, S. Walbridge & A. Gerlich. (2019) Tool eccentricity in friction stir welding: a comprehensive review. Science and Technology of Welding and Joining 24:6, pages 566-578.
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N. Bhardwaj, R. Ganesh Narayanan, U.S. Dixit & M.S.J. Hashmi. (2019) Recent developments in friction stir welding and resulting industrial practices. Advances in Materials and Processing Technologies 5:3, pages 461-496.
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Atilla Savaş. (2016) Investigating the influence of tool shape during FSW of aluminum alloy via CFD analysis. Journal of the Chinese Institute of Engineers 39:2, pages 211-220.
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J Hilgert, J F dos Santos & N Huber. (2012) Shear layer modelling for bobbin tool friction stir welding. Science and Technology of Welding and Joining 17:6, pages 454-459.
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R Rai, A De, H K D H Bhadeshia & T DebRoy. (2011) Review: friction stir welding tools. Science and Technology of Welding and Joining 16:4, pages 325-342.
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E. R. I. Mahmoud, M. Takahashi, T. Shibayanagi & K. Ikeuchi. (2009) Effect of friction stir processing tool probe on fabrication of SiC particle reinforced composite on aluminium surface. Science and Technology of Welding and Joining 14:5, pages 413-425.
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G. Buffa & L. Fratini. (2009) Friction stir welding of steels: process design through continuum based FEM model. Science and Technology of Welding and Joining 14:3, pages 239-246.
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P L Threadgill, A J Leonard, H R Shercliff & P J Withers. (2009) Friction stir welding of aluminium alloys. International Materials Reviews 54:2, pages 49-93.
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E. R. I. Mahmoud, K. Ikeuchi & M. Takahashi. (2008) Fabrication of SiC particle reinforced composite on aluminium surface by friction stir processing. Science and Technology of Welding and Joining 13:7, pages 607-618.
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A. Gerlich, P. Su, M. Yamamoto & T. H. North. (2008) Material flow and intermixing during dissimilar friction stir welding. Science and Technology of Welding and Joining 13:3, pages 254-264.
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A. Gerlich, M. Yamamoto & T. H. North. (2007) Local melting and cracking in Al 7075-T6 and Al 2024-T3 friction stir spot welds. Science and Technology of Welding and Joining 12:6, pages 472-480.
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A. Simar, T. Pardoen & B. de Meester. (2007) Effect of rotational material flow on temperature distribution in friction stir welds. Science and Technology of Welding and Joining 12:4, pages 324-333.
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T. Long, W. Tang & A. P. Reynolds. (2007) Process response parameter relationships in aluminium alloy friction stir welds. Science and Technology of Welding and Joining 12:4, pages 311-317.
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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.
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L. Fratini, G. Buffa, D. Palmeri, J. Hua & R. Shivpuri. (2006) Material flow in FSW of AA7075–T6 butt joints: numerical simulations and experimental verifications. Science and Technology of Welding and Joining 11:4, pages 412-421.
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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.
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A. Simar, J. Lecomte-Beckers, T. Pardoen & B. de Meester. (2006) Effect of boundary conditions and heat source distribution on temperature distribution in friction stir welding. Science and Technology of Welding and Joining 11:2, pages 170-177.
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Articles from other publishers (54)

Gaoqiang Chen, Huijie Liu & Qingyu Shi. (2023) Development of Computational Approach for Analyzing In-Process Thermal-Mechanical Condition during Friction Stir Welding for Prediction of Material Bonding Defect. Materials 16:23, pages 7473.
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Bhanodaya Kiran Babu Nadikudi. (2023) Role and Effect of Friction Stir Welding Tool pin Profiles on Tensile Characteristics of Dissimilar Al6061-Al2014 Welded Joints. Key Engineering Materials 965, pages 29-34.
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Nikhil Gotawala & Hang Z. Yu. (2023) Material flow path and extreme thermomechanical processing history during additive friction stir deposition. Journal of Manufacturing Processes 101, pages 114-127.
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Mostafa Akbari, Parviz Asadi & Tomasz Sadowski. (2023) A Review on Friction Stir Welding/Processing: Numerical Modeling. Materials 16:17, pages 5890.
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Mostafa Akbari, Hossein Rahimi Asiabaraki & MRM Aliha. (2023) Investigation of the effect of welding and rotational speed on strain and temperature during friction stir welding of AA5083 and AA7075 using the CEL approach. Engineering Research Express 5:2, pages 025012.
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D. Ambrosio, A. Tongne, V. Wagner, G. Dessein & O. Cahuc. (2023) Towards material flow prediction in friction stir welding accounting for mechanisms governing chip formation in orthogonal cutting. Journal of Manufacturing Processes 85, pages 450-465.
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Omar S. Salih, Hengan Ou & Wei Sun. (2023) Heat generation, plastic deformation and residual stresses in friction stir welding of aluminium alloy. International Journal of Mechanical Sciences 238, pages 107827.
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Hua Ji, Yun Lai Deng, Hong Yong Xu, Xiaoxi Yin, Teng Zhang, Wen Quan Wang, Hong Gang Dong, Tian Yu Wang & Jin Peng Wu. (2022) Numerical modeling for the mechanism of shoulder and pin features affecting thermal and material flow behavior in friction stir welding. Journal of Materials Research and Technology 21, pages 662-678.
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Soumyadeep Sen & Jayaprakash Murugesan. (2022) Experimental and numerical analysis of friction stir welding: a review. Engineering Research Express 4:3, pages 032004.
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Virendra Pratap Singh, Surendra Kumar Patel & Basil Kuriachen. (2021) Mechanical and microstructural properties evolutions of various alloys welded through cooling assisted friction-stir welding: A review. Intermetallics 133, pages 107122.
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Vinayak Malik & Satish V Kailas. (2020) Understanding the effect of tool geometrical aspects on intensity of mixing and void formation in friction stir process. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 235:4, pages 744-757.
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P. Jedrasiak & H.R. Shercliff. (2019) Small strain finite element modelling of friction stir spot welding of Al and Mg alloys. Journal of Materials Processing Technology 263, pages 207-222.
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Javad Rasti. (2018) Study of the welding parameters effect on the tunnel void area during friction stir welding of 1060 aluminum alloy. The International Journal of Advanced Manufacturing Technology 97:5-8, pages 2221-2230.
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Sanjay Sharma, Gurmeet Singh Cheema, Sahib Sartaj Singh & Deepak Verma. 2018. Design and Optimization of Mechanical Engineering Products. Design and Optimization of Mechanical Engineering Products 152 179 .
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T. Pavan kumar & P. Prabhakar Reddy. (2018) Non-Destructive Analysis of FSW Process and Comparison With Simulation and Microstructural Analysis. Procedia Manufacturing 20, pages 187-194.
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C. A. Hernández, V. H. Ferrer, J. E. Mancilla & L. C. Martínez. (2017) Three-dimensional numerical modeling of the friction stir welding of dissimilar steels. The International Journal of Advanced Manufacturing Technology 93:5-8, pages 1567-1581.
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T. Pavan Kumar & P. Prabhakar Reddy. (2017) Non Destructive Analysis of Fsw Welds using Ultrasonic Signal Analysis. IOP Conference Series: Materials Science and Engineering 225, pages 012060.
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Ju-Ri Kim, Eun-Yeong Ahn, Hrishikesh Das, Yong-Ha Jeong, Sung-Tae Hong, Michael Miles & Kwang-Jin Lee. (2017) Effect of tool geometry and process parameters on mechanical properties of friction stir spot welded dissimilar aluminum alloys. International Journal of Precision Engineering and Manufacturing 18:3, pages 445-452.
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M. Mehta, G.M. Reddy, A.V. Rao & A. De. (2015) Numerical modeling of friction stir welding using the tools with polygonal pins. Defence Technology 11:3, pages 229-236.
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