Finite element modeling of the aluminothermic welding with internal defects and experimental analysis
There are several hundreds aluminothermic welds and tenth of new welds being made daily on the Moroccan rail network. Although the aluminothermic welding technique is well proven, it is a critical safety component of the rail infrastructure. The consequences of a single failure could result in the d...
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2012-07-01
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Series: | MATEC Web of Conferences |
Online Access: | http://dx.doi.org/10.1051/matecconf/20120100002 |
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doaj-682eee7b73ed406fb462dcf918e841e02021-03-02T09:34:35ZengEDP SciencesMATEC Web of Conferences2261-236X2012-07-0110000210.1051/matecconf/20120100002Finite element modeling of the aluminothermic welding with internal defects and experimental analysisSidki F.Mouallif I.Mouallif Z.Benali A.There are several hundreds aluminothermic welds and tenth of new welds being made daily on the Moroccan rail network. Although the aluminothermic welding technique is well proven, it is a critical safety component of the rail infrastructure. The consequences of a single failure could result in the derailment. The observations suggest that these defects are mainly of two types: defects of adhesion (or bonding defects) and porosity defects (or multiple blisters defects). Each of these defects may constitute a privileged site of stress concentration. Depending on the level of these stresses, potential damage process may be developed and put off the rail. It therefore seems necessary to model the mechanical behavior of these welds with these defects in order to classify them by their criticality. In this study, we therefore modeled with the same load and with the same boundary conditions, the weld seam for each type of defect. The numerical and experimental results show that the defects of adhesion tend to concentrate the most constraints. http://dx.doi.org/10.1051/matecconf/20120100002 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sidki F. Mouallif I. Mouallif Z. Benali A. |
spellingShingle |
Sidki F. Mouallif I. Mouallif Z. Benali A. Finite element modeling of the aluminothermic welding with internal defects and experimental analysis MATEC Web of Conferences |
author_facet |
Sidki F. Mouallif I. Mouallif Z. Benali A. |
author_sort |
Sidki F. |
title |
Finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
title_short |
Finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
title_full |
Finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
title_fullStr |
Finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
title_full_unstemmed |
Finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
title_sort |
finite element modeling of the aluminothermic welding with internal defects and experimental analysis |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2012-07-01 |
description |
There are several hundreds aluminothermic welds and tenth of new welds being made daily on the Moroccan rail network. Although the aluminothermic welding technique is well proven, it is a critical safety component of the rail infrastructure. The consequences of a single failure could result in the derailment. The observations suggest that these defects are mainly of two types: defects of adhesion (or bonding defects) and porosity defects (or multiple blisters defects). Each of these defects may constitute a privileged site of stress concentration. Depending on the level of these stresses, potential damage process may be developed and put off the rail. It therefore seems necessary to model the mechanical behavior of these welds with these defects in order to classify them by their criticality. In this study, we therefore modeled with the same load and with the same boundary conditions, the weld seam for each type of defect. The numerical and experimental results show that the defects of adhesion tend to concentrate the most constraints. |
url |
http://dx.doi.org/10.1051/matecconf/20120100002 |
work_keys_str_mv |
AT sidkif finiteelementmodelingofthealuminothermicweldingwithinternaldefectsandexperimentalanalysis AT mouallifi finiteelementmodelingofthealuminothermicweldingwithinternaldefectsandexperimentalanalysis AT mouallifz finiteelementmodelingofthealuminothermicweldingwithinternaldefectsandexperimentalanalysis AT benalia finiteelementmodelingofthealuminothermicweldingwithinternaldefectsandexperimentalanalysis |
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