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Numerical Analysis of Temperature Distribution in Tandem Welding Process

Cilt: 12 Sayı: 1 15 Haziran 2022
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Numerical Analysis of Temperature Distribution in Tandem Welding Process

Öz

In this study, the numerical solutions for the steady-state heat conduction problem with uniform heat source, the steady-state heat conduction problem with convective heat transfer and the transient heat conduction problem have been developed using finite difference method. These numerical solutions have been validated with analytical solutions. After observing the good agreements between numerical solutions and analytical solutions, these three different problems combined to simulate the tandem welding process. The first objective of this study is to present a numerical simulator for the transient heat conduction problem that includes non-uniform moving heat sources and convective heat transfer term. This numerical simulator contains explicit and implicit time discretization methods. In this simulator, it is possible to change the grid sizes, time step sizes, total simulation time, distance between electrodes, magnitude of the sources' power, speed of the sources, etc. Secondly, the temperature distribution of single and twin wire welding processes have been compared using proposed numerical simulator to investigate the premature solidification of liquid metal in low-temperature zone of molten pool. Thirdly, experimental study was carried out using Fluke Thermal Imager to validate numerical results. It was obtained that the maximum temperature of numerical result is very close to the maximum temperature of experimental result with 0.248 % error. Finally, the all Matlab codes related to developed numerical simulator have been added to Appendix to facilitate other researchers’ work.

Anahtar Kelimeler

Computational fluid dynamics, Finite difference method, Tandem welding

Kaynakça

  1. Bajor, T., Kwapisz, M., Krakowiak, M., & Jurczak, H. (2021). THE ANALYSIS OF THE EXTRUSION PROCESS OF Al 6005 ALLOY SECTION. Journal of Chemical Technology and Metallurgy, 56(3), 637-642.
  2. Chen, D., Chen, M., & Wu, C. (2015). Effects of phase difference on the behavior of arc and weld pool in tandem P-GMAW. Journal of Materials Processing Technology, 225, 45-55.
  3. Goecke, S., Berlin, F. U. B. T., Hedegård, J., Joining, S. I. M. R., & AB, E. W. E. (2001). Tandem Mig/Mag Welding. A Welding Review Published by Esab, 56(2-3), 24-28.
  4. Golub, G. (1965). Numerical methods for solving linear least squares problems. Numerische Mathematik, 7(3), 206-216.
  5. Grigull, U., & Sandner, H. (1984). Heat conduction.
  6. Kim, C., Ahn, Y., Lee, K. B., & Kim, D. (2016). High-deposition-rate position welding of Al 5083 alloy for spherical-type liquefied natural gas tank. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 230(5), 818-824.
  7. Lee, K. B., Kim, C., & Kim, D. S. (2013). High deposition rate pulse gas metal arc welding for Al 5083 thick plate. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 227(6), 848-854.
  8. Lubich, C., & Ostermann, A. (1995). Linearly implicit time discretization of non-linear parabolic equations. IMA journal of numerical analysis, 15(4), 555-583.
  9. Michie, K. (1999). Twin-wire GMAW: process, characteristics and applications. Welding Journal, 78(5), 31-34.
  10. Özısık, M. N. (1993). Heat conduction. John Wiley & Sons.

Kaynak Göster

APA
Ünal, O., & Akkaş, N. (2022). Numerical Analysis of Temperature Distribution in Tandem Welding Process. Karadeniz Fen Bilimleri Dergisi, 12(1), 1-21. https://doi.org/10.31466/kfbd.996230
AMA
1.Ünal O, Akkaş N. Numerical Analysis of Temperature Distribution in Tandem Welding Process. KFBD. 2022;12(1):1-21. doi:10.31466/kfbd.996230
Chicago
Ünal, Osman, ve Nuri Akkaş. 2022. “Numerical Analysis of Temperature Distribution in Tandem Welding Process”. Karadeniz Fen Bilimleri Dergisi 12 (1): 1-21. https://doi.org/10.31466/kfbd.996230.
EndNote
Ünal O, Akkaş N (01 Haziran 2022) Numerical Analysis of Temperature Distribution in Tandem Welding Process. Karadeniz Fen Bilimleri Dergisi 12 1 1–21.
IEEE
[1]O. Ünal ve N. Akkaş, “Numerical Analysis of Temperature Distribution in Tandem Welding Process”, KFBD, c. 12, sy 1, ss. 1–21, Haz. 2022, doi: 10.31466/kfbd.996230.
ISNAD
Ünal, Osman - Akkaş, Nuri. “Numerical Analysis of Temperature Distribution in Tandem Welding Process”. Karadeniz Fen Bilimleri Dergisi 12/1 (01 Haziran 2022): 1-21. https://doi.org/10.31466/kfbd.996230.
JAMA
1.Ünal O, Akkaş N. Numerical Analysis of Temperature Distribution in Tandem Welding Process. KFBD. 2022;12:1–21.
MLA
Ünal, Osman, ve Nuri Akkaş. “Numerical Analysis of Temperature Distribution in Tandem Welding Process”. Karadeniz Fen Bilimleri Dergisi, c. 12, sy 1, Haziran 2022, ss. 1-21, doi:10.31466/kfbd.996230.
Vancouver
1.Osman Ünal, Nuri Akkaş. Numerical Analysis of Temperature Distribution in Tandem Welding Process. KFBD. 01 Haziran 2022;12(1):1-21. doi:10.31466/kfbd.996230