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Application of Abaqus to analysis of the temperature field in elements heated by moving heat sources

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Numerical analysis of thermal phenomena occurring during laser beam heating is presented in this paper. Numerical models of surface and volumetric heat sources were presented and the influence of different laser beam heat source power distribution on temperature field was analyzed. Temperature field was obtained by a numerical solution the transient heat transfer equation with activity of inner heat sources using finite element method. Temperature distribution analysis in welded joint was performed in the ABAQUS/Standard solver. The DFLUX subroutine was used for implementation of the movable welding heat source model. Temperature-depended thermophysical properties for steel were assumed in computer simulations. Temperature distribution in laser beam surface heated and butt welded plates was numerically estimated.
Rocznik
Strony
177--182
Opis fizyczny
Bibliogr. 18 poz., rys., tab., wykr.
Twórcy
autor
  • Czestochowa University of Technology, Institute of Mechanics and Machine Design, ul. Dabrowskiego 73, 42-200 Czestochowa, Polska
autor
  • Czestochowa University of Technology, Institute of Mechanics and Machine Design, ul. Dabrowskiego 73, 42-200 Czestochowa, Polska
autor
  • Czestochowa University of Technology, Institute of Mechanics and Machine Design, ul. Dabrowskiego 73, 42-200 Czestochowa, Polska
Bibliografia
  • [1] A.P. Mackwood, R.C. Cafer, Thermal modelling of laser welding and related processes: a literature review, Optics and Laser Technology 37 (2005) 99-115.
  • [2] J. Pilarczyk, M. Banasik, Dworak, S. Stano, Technological applications of laser beam welding and cutting at the Instytut Spawalnictwa, Przegląd Spawalnictwa, 5-6 (2006) 6-10 (in Polish).
  • [3] A.De.S.K. Maiti, C.A. Walsh, H.K.D.H. Bhadeshia, Finite element simulation of laser spot welding, Science and Technology of Welding and Joining, 8 (2003) 377-384.
  • [4] W. Piekarska, Numerical analysis of thermomechanical phenomena during laser welding process. The temperature fields, phase transformations and stresses, Monograph 135, Częstochowa (2007) (in Polish).
  • [5] S.A. Tsirkas, P. Papanikos, Th. Kermanidis, Numerical simulation of the laser welding process in butt-joint specimens, J. of Materials Processing Techn., 134 (2003) 59-69.
  • [6] H. Long, D. Gery, A. Carlier, P. Maropoulos, Prediction of welding distortion in butt join of thin plates, Materials & Design, 30 (2009) 4126-4135.
  • [7] W.S. Chang, S.J. Na, A study on the prediction of the laser weld shape with varying heat source equations and the thermal distortion of a small structure in micro-joining, Journal of Materials Processing Technology 120 (2002) 208-214.
  • [8] G. Araya, G. Gutierrez, Analytical solution for a transient, three-dimensional temperature distribution due to a moving laser beam, International Journal of Haet and Mass Transfer 49 (2006) 4124-4131.
  • [9] S. Kumar, S.C. Bhaduri, Three-dimensional finite element modeling of gas metal-arc welding, Metallurgical and Materials Transactions B, 25B (1994) 435-441.
  • [10] Mochnacki B., Nowak A., Pocica A., Numerical model of superficial layer heat treatment using the TIG method, ED.: K. Świątkowski, Com. of Met. Pol. Ac. of Sci, (2002) vol. 2, 229-235.
  • [11] Bokota A., Parkitny R., Sczygiol N., Sowa L., Modelowanie numeryczne podstawowych zjawisk krzepnięcia odlewu, rozdz. 1 monografii pt. Postępy teorii i praktyki odlewniczej, pod red. J. Szajnara, Archives of Foundry Engineering (2009) 7-20.
  • [12] Bokota A., Gawrońska E., Parkitny R. Sczygiol N., Numeryczne modelowanie zjawisk towarzyszących procesowi krzepnięcia metali i ich stopów za pomocą autorskich programów komputerowych rozdz. 2 monografii pt. Postępy teorii i praktyki odlewniczej, pod red. J. Szajnara, Archives of Foundry Engineering (2009) 21-34.
  • [13] Bokota A., Piekarska W., Numerical modeling of residual stresses in a dual laser beam welding, Metalurgija (2010) vol. 49 156-160.
  • [14] Piekarska W., Kubiak M., Numerical estimation of temperature distribution in laser welded elements, Archives of Foundry Engineering (2008) 277-280.
  • [15] D. Klobčar, J. Tušek, B. Taljat, Finite element modeling of GTA weld surfacing applied to hot-work tooling, Computational Materials Science 32 (2004) 368-378.
  • [16] E. Ranatowski, Remarks on modelling of the thermal processes using concentrated energy sources, Przegląd Spawalnictwa, 8-10 (2002) 152-155 (in Polish).
  • [17] Abaqus analysis user’s manual. Version 6.7, SIMULIA, Dassault System (2007).
  • [18] Abaqus theory manual. Version 6.7, SIMULIA, Dassault System (2007).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a75363bd-86e4-4969-8535-88a1931c801a
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