Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures

One of the main factors affecting the use of lasers in the industry for welding thick structures is the process accompanying solidification cracks. These cracks mostly occurring along the welding direction in the welding center, and strongly affect the safety of the welded components. In the present...

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Main Authors: Nasim Bakir, Antoni Artinov, Andrey Gumenyuk, Marcel Bachmann, Michael Rethmeier
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Metals
Subjects:
Online Access:http://www.mdpi.com/2075-4701/8/6/406
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spelling doaj-00b23e0795ca48399af0c0836a8474042020-11-25T00:26:35ZengMDPI AGMetals2075-47012018-06-018640610.3390/met8060406met8060406Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled StructuresNasim Bakir0Antoni Artinov1Andrey Gumenyuk2Marcel Bachmann3Michael Rethmeier4BAM Federal Institute for Material Research and Testing, 12205 Berlin, GermanyBAM Federal Institute for Material Research and Testing, 12205 Berlin, GermanyBAM Federal Institute for Material Research and Testing, 12205 Berlin, GermanyBAM Federal Institute for Material Research and Testing, 12205 Berlin, GermanyBAM Federal Institute for Material Research and Testing, 12205 Berlin, GermanyOne of the main factors affecting the use of lasers in the industry for welding thick structures is the process accompanying solidification cracks. These cracks mostly occurring along the welding direction in the welding center, and strongly affect the safety of the welded components. In the present study, to obtain a better understanding of the relation between the weld pool geometry, the stress distribution and the solidification cracking, a three-dimensional computational fluid dynamic (CFD) model was combined with a thermo-mechanical model. The CFD model was employed to analyze the flow of the molten metal in the weld pool during the laser beam welding process. The weld pool geometry estimated from the CFD model was used as a heat source in the thermal model to calculate the temperature field and the stress development and distributions. The CFD results showed a bulging region in the middle depth of the weld and two narrowing areas separating the bulging region from the top and bottom surface. The thermo-mechanical simulations showed a concentration of tension stresses, transversally and vertically, directly after the solidification during cooling in the region of the solidification cracking.http://www.mdpi.com/2075-4701/8/6/406laser beam weldingsolidification crackingnumerical simulationCFD modelfinite element method (FEM)weld poolfull penetration
collection DOAJ
language English
format Article
sources DOAJ
author Nasim Bakir
Antoni Artinov
Andrey Gumenyuk
Marcel Bachmann
Michael Rethmeier
spellingShingle Nasim Bakir
Antoni Artinov
Andrey Gumenyuk
Marcel Bachmann
Michael Rethmeier
Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
Metals
laser beam welding
solidification cracking
numerical simulation
CFD model
finite element method (FEM)
weld pool
full penetration
author_facet Nasim Bakir
Antoni Artinov
Andrey Gumenyuk
Marcel Bachmann
Michael Rethmeier
author_sort Nasim Bakir
title Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
title_short Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
title_full Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
title_fullStr Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
title_full_unstemmed Numerical Simulation on the Origin of Solidification Cracking in Laser Welded Thick-Walled Structures
title_sort numerical simulation on the origin of solidification cracking in laser welded thick-walled structures
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2018-06-01
description One of the main factors affecting the use of lasers in the industry for welding thick structures is the process accompanying solidification cracks. These cracks mostly occurring along the welding direction in the welding center, and strongly affect the safety of the welded components. In the present study, to obtain a better understanding of the relation between the weld pool geometry, the stress distribution and the solidification cracking, a three-dimensional computational fluid dynamic (CFD) model was combined with a thermo-mechanical model. The CFD model was employed to analyze the flow of the molten metal in the weld pool during the laser beam welding process. The weld pool geometry estimated from the CFD model was used as a heat source in the thermal model to calculate the temperature field and the stress development and distributions. The CFD results showed a bulging region in the middle depth of the weld and two narrowing areas separating the bulging region from the top and bottom surface. The thermo-mechanical simulations showed a concentration of tension stresses, transversally and vertically, directly after the solidification during cooling in the region of the solidification cracking.
topic laser beam welding
solidification cracking
numerical simulation
CFD model
finite element method (FEM)
weld pool
full penetration
url http://www.mdpi.com/2075-4701/8/6/406
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AT andreygumenyuk numericalsimulationontheoriginofsolidificationcrackinginlaserweldedthickwalledstructures
AT marcelbachmann numericalsimulationontheoriginofsolidificationcrackinginlaserweldedthickwalledstructures
AT michaelrethmeier numericalsimulationontheoriginofsolidificationcrackinginlaserweldedthickwalledstructures
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