Methodology for Calculating Heat Loss in the Study of Friction Stir Welding

Article Preview

Abstract:

Currently, the most promising high-tech and productive process is friction stir welding. An important element of this technology is the determination of the material temperature in the stir zone, which can be determined by calculation based on the amount of heat input introduced into the welding zone. To determine this value, experimental of the dependence of heat input on the tool rotation speed and welding speed were carried out. For this, a scheme of experiments has been selected in which the material to be welded (aluminum alloy AMg5) is modeled as an experimental tube with a diameter of 20 mm, and the tool (made of tool steel R6M5) is modeled as a working plate. On the designed and manufactured stand, studies of the dependence of the heat-liberation value for the speeds of rotation of the experimental tube 42-105 rad/s were carried out. In this case, due to the pressing force of the experimental tube and the working plate, a constant temperature of the place of friction was maintained. The obtained experimental data were used to calculate the heat-liberation value and heat power on each concentric ring 2 mm wide at the end of the working tool with a diameter of 20 mm, as well as the total heat power for different speeds of rotation and welding.When carrying out experiments on the bench, heat losses were determined by thermal conductivity along the rod on which the experimental tube is fixed, as well as from the working plate made of tool steel through the gasket onto the working table and by convection from the surface of the rotating experimental tube into the environment. The calculation results showed that each of these losses does not exceed 3-10%. These losses are taken into account in the heat supply calculations.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

575-580

Citation:

Online since:

May 2021

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2021 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] R.R. Kotlyshev, K.G. Shuchev, A.V. Kramskoy, Calculation of temperatures in friction stir welding of aluminum alloys, Bulletin of DSTU. T. 10, No. 5 (48) (2010) 693-699.

Google Scholar

[2] A.Yu. Medvedev, S.P. Pavlinich, V.V. Atroshchenko, N.I. Markelova, Simulation of the temperature field in linear friction welding, USATU Bulletin. T. 14, No. 2 (2010) 76–81.

Google Scholar

[3] R.A. Rzayev, A.A. Chularis, A.U. Dzhalmukhambetov, S.M. Atuev, Dynamic model of temperature distribution in metal during friction stir welding, Fundamental research. No. 3-1 (2016) 47–55.

Google Scholar

[4] M. Grujicic, G. Arakere, H.V. Yalavarthy, T. He, C.F. Yen and B.A. Cheeseman, Modeling of AA5083 Material Microstructure Evolution During Butt Friction-Stir Welding, Journal of Materials Engineering and Performance. Vol. 19, 5 (2010) 672–684.

DOI: 10.1007/s11665-009-9536-1

Google Scholar

[5] V. Statsenko, A. Sukhorada, M. Bernvskaya, Research of heat input in friction stir welding. Materials Science Forum, ISSN: 1662-9752, Trans Tech Publications Ltd., Switzerland. Vol. 945 (2011) 634-638.

DOI: 10.4028/www.scientific.net/msf.945.634

Google Scholar

[6] V.M. Isachenko, V.A. Osipova, A.S. Suhomel, Heat transfer, M .: Energoizdat. (1981) 488.

Google Scholar

[7] E.A. Krasnoshchekov, A.S. Sukomel, Heat transfer problem book, M.: Energiya. (1980) 288.

Google Scholar

[8] V. Statsenko, A. Sukhorada, V. Lelyukhin, Modeling heat input when friction stir welding, IOP Conf. Series: Materials Science and Engineering. Vol. 681, No. 1 (2019). doi: 10.1088 / 1757-899X / 681/1/012042.

DOI: 10.1088/1757-899x/681/1/012042

Google Scholar