Friction Stir Forming of Aluminum Alloy Gear-Racks with Semi-Closed Dies

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This paper reports friction-stir forming (FSF) of gear-racks of JIS A5083 aluminum alloy with semi-closed dies. FSF is a modified friction-stir process suggested by Nishihara in 2002. The process generates frictional heat and internal forces, enabling massive deformation of the material. It has been successfully utilized for mechanical joining and microforming, but seems to offer an opportunity for net-shape forming of bulk products as well. We put a material in a semi-closed gear-rack die and conducted friction stirring on its top surface. The material deformed and filled the cavity of the die due to high pressure and heat caused by friction stirring. This study investigates the forming conditions and the corresponding results, including the material fill ratio in the tooth. We also investigated the difference between this method and open-type FSF that had been conducted with an open-die structure.

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50-56

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February 2020

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[1] M.W. Thomas, J. Nicholas, J.C. Needham, M.G. Murch, P. Templesmith, C.J. Dawes, US Patent, 5, 460,317. (2001).

Google Scholar

[2] W. M. Thomas, Friction stir welding and related friction process characteristics, Proc. 7th International Conference Joints in Aluminium (INALCO'98), (1998) 1-18.

Google Scholar

[3] T. Nishihara, Development of Friction Stir Forming, Materials Science Forum, 426-432(2003) 2971-2978.

DOI: 10.4028/www.scientific.net/msf.426-432.2971

Google Scholar

[4] T.Nishihara, Japanese Patent. 4, 646, 421. (2002).

Google Scholar

[5] E. Yukutake, Y.Motohashi, M.Kouta, S.Negishi, New Method of Boss Forming on Magnesium Alloy Sheet by Friction Stir Technology, Proc. 69th Annual World Magnesium Conference,(2012) 85-90.

Google Scholar

[6] M. Otsu, Y.Katayama, T.Muranaka, Effect of Difference of Tool Rotation Direction on Forming Limit in Friction Stir Incremental Forming, Key Engineering Materials,622/623-1(2014)390-397.

DOI: 10.4028/www.scientific.net/kem.622-623.390

Google Scholar

[7] R. Matsumoto, H.Tsuruoka, H.Utsunomiya, M.Otsu, Fabrication of skin layer on aluminum foam surface by friction stir incremental forming and its mechanical properties, Journal of Material Processing Technology,217(2015)222-231.

DOI: 10.1016/j.jmatprotec.2014.11.030

Google Scholar

[8] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Cylindrical Pin Embossment on A5083 Aluminum Alloy Substrate Fabricated by Friction Stir Forming, Proc. International Conference on Material Engineering and Application, (2016), to be published in Key Engineering Materials.

DOI: 10.4028/www.scientific.net/kem.730.253

Google Scholar

[9] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Low Height Ultra-Thin Fin on A5083 Aluminum Plate Fabricated by Friction-Stir Formin, Proc.13th Global Congress on Manufacturing and Management (GCMM2016), (2016) to be published in Procedia Engineering.

DOI: 10.1016/j.proeng.2017.01.150

Google Scholar

[10] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Cylindrical Extrusions on A5083 Aluminum Alloy Plate Fabricated by Friction Stir Forming, Proc.20th International ESAFORM Conference on Material Forimng (ESAFORM2017),(2017) to be published.

DOI: 10.1063/1.5008082

Google Scholar

[11] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Proposal of Fastenerless-Riveting Utilizing Friction Stir Forming, Prc.67th Japanese joint Conference for the Technology of Plasticity, (2016)167-168.

DOI: 10.4028/www.scientific.net/kem.751.186

Google Scholar

[12] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Easily-Decomposable Dissimilar-Materials- Joining with Employing Friction Stir Forming (FSF), Proc. JSME Materials and Processing Conference, (2016) to be published.

DOI: 10.1299/jsmemp.2016.24.222

Google Scholar

[13] T. Ohashi, H. Mofidi Tabatabaei, T. Nishihara, Observation of Material Flow in Friction Stir Forming for A5083 Aluminum Alloy Gear-Rack, Proc.2016 International Conference on Engineering and Innovative materials (ICEIM2016), (2016)287-291.

DOI: 10.4028/www.scientific.net/msf.889.113

Google Scholar

[14] T. Ohashi, H. Mofidi Tabatabaei, T. Ikeya, T. Nishihara, Friction Stir Forming of A5083 Aluminum Alloy Gear-Racks with WC Particles Embedded in Tooth Surface, Key Engineering Materials, 723(2017) 148-153.

DOI: 10.4028/www.scientific.net/kem.723.148

Google Scholar

[15] T.Ohashi, J.Chen, T. Nishihara,H. Mofidi Tabatabaei, Friction Stir Forming of Aluminum Alloy Gear-Racks, Proc.13th Asia-Pacific Symposium on Engineering Plasticity and Its Applications, (2016), to be published.

DOI: 10.4028/www.scientific.net/kem.725.665

Google Scholar

[16] S. W. Kallee, E. D. Nicholas and W. M. Thomas: Friction stir welding- invention, innovations and applications. Proceedings of 8th International Conference on Joints in Aluminium (INALCO 2001), (2001) 28-30.

Google Scholar