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Hybrid realization of fillet weld

Václav Kotlan (Department of Electrical Engineering Theory, Faculty of Electrical Engineering, University of West Bohemia, Plzen, Czech Republic)
Roman Hamar (University of West Bohemia, Plzen, Czech Republic)
Lenka Šroubová (Department of Electrical Engineering Theory, University of West Bohemia, Plzen, Czech Republic)
Ivo Doležel (Department of Electrical Engineering Theory, Faculty of Electrical Engineering, University of West Bohemia, Pilsen, Czech Republic)

COMPEL - The international journal for computation and mathematics in electrical and electronic engineering

ISSN: 0332-1649

Article publication date: 5 September 2018

Issue publication date: 16 October 2018

93

Abstract

Purpose

A model of hybrid fillet welding is built and solved. No additional material (welding rod, etc.) is used. Heating of the welded parts is realized by laser beam with induction preheating and/or postheating. The purpose of these operations is to reduce the temperature gradient in welded parts in the course of both heating and cooling, which reduces the resultant hardness of the weld and its neighborhood and also reduces undesirable internal mechanical strains and stresses in material.

Design/methodology/approach

The complete mathematical model of the combined welding process is presented, taking into account all relevant nonlinearities. The model is then solved numerically by the finite element method. The methodology is illustrated with an example, the results of which are compared with experiment.

Findings

The proposed model provided satisfactory results even when some subtle phenomena were not taken into account (flow of melt in the pool after irradiation of the laser beam driven by the buoyancy and gravitational forces and evaporation of molten metal and influence of plasma cloud above the irradiated spot).

Research limitations/implications

Accuracy of the results depends on the accuracy of physical parameters of materials entering the model and their temperature dependencies. These quantities are functions of chemical composition of the materials used, and may more or less differ from the values delivered by manufacturers. Also, the above subtle physical phenomena exhibit stochastic character and their modeling may be accompanied by non-negligible uncertainties.

Practical implications

The presented model and methodology of its solution may represent a basis for design of welding processes in various branches of industry.

Originality/value

The model of a complex multiphysics problem (induction-assisted laser welding) provides reasonable results confirmed by experiments.

Keywords

Acknowledgements

This research has been supported by the Ministry of Education, Youth and Sports of the Czech Republic under the RICE New Technologies and Concepts for Smart Industrial Systems, project No. LO1607 and internal project SGS-2015-035.

Citation

Kotlan, V., Hamar, R., Šroubová, L. and Doležel, I. (2018), "Hybrid realization of fillet weld", COMPEL - The international journal for computation and mathematics in electrical and electronic engineering, Vol. 37 No. 4, pp. 1315-1327. https://doi.org/10.1108/COMPEL-08-2017-0357

Publisher

:

Emerald Publishing Limited

Copyright © 2018, Emerald Publishing Limited

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