Heat transfer and fluid flow during laser spot welding of 304 stainless steel
- 29 May 2003
- journal article
- Published by IOP Publishing in Journal of Physics D: Applied Physics
- Vol. 36 (12), 1388-1398
- https://doi.org/10.1088/0022-3727/36/12/306
Abstract
The evolution of temperature and velocity fields during laser spot welding of 304 stainless steel was studied using a transient, heat transfer and fluid flow model based on the solution of the equations of conservation of mass, momentum and energy in the weld pool. The weld pool geometry, weld thermal cycles and various solidification parameters were calculated. The fusion zone geometry, calculated from the transient heat transfer and fluid flow model, was in good agreement with the corresponding experimentally measured values for various welding conditions. Dimensional analysis was used to understand the importance of heat transfer by conduction and convection and the roles of various driving forces for convection in the weld pool. During solidification, the mushy zone grew at a rapid rate and the maximum size of the mushy zone was reached when the pure liquid region vanished. The solidification rate of the mushy zone/liquid interface was shown to increase while the temperature gradient in the liquid zone at this interface decreased as solidification of the weld pool progressed. The heating and cooling rates, temperature gradient and the solidification rate at the mushy zone/liquid interface for laser spot welding were much higher than those for the moving and spot gas tungsten arc welding.Keywords
This publication has 22 references indexed in Scilit:
- Prediction of laser-spot-weld shape by numerical analysis and neural networkMetallurgical and Materials Transactions B, 2001
- Modelling of melting and solidification behaviour during laser spot weldingScience and Technology of Welding and Joining, 1997
- Flow Effects on the Solidification Environment in a GTA Spot WeldJournal of Engineering Materials and Technology, 1993
- Effects of oxygen and sulfur on alloying element vaporization rates during laser weldingMetallurgical Transactions B, 1988
- Free surface flow and heat transfer in conduction mode laser weldingMetallurgical Transactions B, 1988
- Mechanism of alloying element vaporization during laser weldingMetallurgical Transactions B, 1987
- The role of transient convection in the melting and solidification in arc weldpoolsMetallurgical Transactions B, 1986
- Alloying element vaporization and weld pool temperature during laser welding of AlSl 202 stainless steelMetallurgical Transactions B, 1984
- Heat transfer model for cw laser material processingJournal of Applied Physics, 1980
- Heat treating and melting material with a scanning laser or electron beamJournal of Applied Physics, 1977