Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.

This article addresses the study of crack behavior elicited on axial fatigue in specimens joined by butt weld made of steel ASTM A36 by using fracture mechanics and simulation software of finite elements (Ansys APDL, Franc3D). The computational model was initially to define the geometry model by usi...

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Main Authors: Oscar Araque, Nelson Arzola, Omar Varón
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0218973
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spelling doaj-037c45a0f2294721914515857d5d9dc72021-03-03T20:36:00ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01146e021897310.1371/journal.pone.0218973Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.Oscar AraqueNelson ArzolaOmar VarónThis article addresses the study of crack behavior elicited on axial fatigue in specimens joined by butt weld made of steel ASTM A36 by using fracture mechanics and simulation software of finite elements (Ansys APDL, Franc3D). The computational model was initially to define the geometry model by using CAD software. Specimens with Weld Reinforcement of 2 mm and 3mm were simulated. Subsequently, the type of element for the mesh, the information inclusion concerning material mechanical properties and load conditions were selected. By using Franc3D software, the crack propagation phenomenon is analyzed, and its growth parameters have been established. In this way, it is possible to calculate the magnitude of stress intensity factor (SIF) along the crack front. It is concluded that the stress located in the weld toe is maximized proportionately to the size of the weld reinforcement due to the concentration effect of geometric stress. In addition, it is observed that the propagation rate obtained from Paris law has a similar behavior for the studied weld reinforcements; the latter as there were short cracks.https://doi.org/10.1371/journal.pone.0218973
collection DOAJ
language English
format Article
sources DOAJ
author Oscar Araque
Nelson Arzola
Omar Varón
spellingShingle Oscar Araque
Nelson Arzola
Omar Varón
Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
PLoS ONE
author_facet Oscar Araque
Nelson Arzola
Omar Varón
author_sort Oscar Araque
title Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
title_short Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
title_full Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
title_fullStr Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
title_full_unstemmed Computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
title_sort computational modeling of fatigue crack propagation in butt welded joints subjected to axial load.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description This article addresses the study of crack behavior elicited on axial fatigue in specimens joined by butt weld made of steel ASTM A36 by using fracture mechanics and simulation software of finite elements (Ansys APDL, Franc3D). The computational model was initially to define the geometry model by using CAD software. Specimens with Weld Reinforcement of 2 mm and 3mm were simulated. Subsequently, the type of element for the mesh, the information inclusion concerning material mechanical properties and load conditions were selected. By using Franc3D software, the crack propagation phenomenon is analyzed, and its growth parameters have been established. In this way, it is possible to calculate the magnitude of stress intensity factor (SIF) along the crack front. It is concluded that the stress located in the weld toe is maximized proportionately to the size of the weld reinforcement due to the concentration effect of geometric stress. In addition, it is observed that the propagation rate obtained from Paris law has a similar behavior for the studied weld reinforcements; the latter as there were short cracks.
url https://doi.org/10.1371/journal.pone.0218973
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