FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire

The main aim of this work is a computational nonlinear analysis of a high strength steel corrugated-web plate girder with a very detailed and realistic mesh including vertical ribs, all the fillet welds and supporting areas. The analysis is carried out to verify mechanical structural response under...

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Main Authors: Sokołowski D., Kamiński M.
Format: Article
Language:English
Published: Sciendo 2021-06-01
Series:International Journal of Applied Mechanics and Engineering
Subjects:
Online Access:https://doi.org/10.2478/ijame-2021-0028
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spelling doaj-857aa6f6ce5548139605c6f38a6b6d1c2021-09-05T21:02:04ZengSciendoInternational Journal of Applied Mechanics and Engineering2353-90032021-06-0126220121810.2478/ijame-2021-0028FEM Study of a Steel Corrugated Web Plate Girder Subjected to FireSokołowski D.0Kamiński M.1Faculty of Civil Engineering, Architecture and Environmental Engineering, Łódź University of Technology, Al. Politechniki 6, 90-924Łódź, PolandFaculty of Civil Engineering, Architecture and Environmental Engineering, Łódź University of Technology, Al. Politechniki 6, 90-924Łódź, PolandThe main aim of this work is a computational nonlinear analysis of a high strength steel corrugated-web plate girder with a very detailed and realistic mesh including vertical ribs, all the fillet welds and supporting areas. The analysis is carried out to verify mechanical structural response under transient fire temperature conditions accounting for an efficiency and accuracy of three various transient coupled thermo-elastic models. All the resulting stress distributions, deformation modes and their time variations, critical loads and eigenfrequencies as well as failure times are compared in all these models. Nonlinearities include material, geometrical and contact phenomena up to the temperature fluctuations together with temperature-dependent constitutive relations for high strength steel. They result partially from steady state and transient experimental tests or from the additional designing rules included in Eurocodes. A fire scenario includes an application of the normative fire gas temperature curve on the bottom flange of the entire girder for a period of 180 minutes. It is computed using sequentially coupled thermo-elastic Finite Element Method analyses. These account for heat conductivity, radiation and convection. The FEM model consists of a combination of 3D hexahedral and tetrahedral solid finite elements and uses temperature-dependent material and physical parameters, whose values are taken after the experiments presented in Eurocodes. Numerical results presented here demonstrate a fundamental role of the lower flange in carrying fire loads according to this scenario and show a contribution of the ribs and of the welds to the strength of the entire structure.https://doi.org/10.2478/ijame-2021-0028steel structuresfinite element methodcorrugated web plate girdersfire simulation
collection DOAJ
language English
format Article
sources DOAJ
author Sokołowski D.
Kamiński M.
spellingShingle Sokołowski D.
Kamiński M.
FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
International Journal of Applied Mechanics and Engineering
steel structures
finite element method
corrugated web plate girders
fire simulation
author_facet Sokołowski D.
Kamiński M.
author_sort Sokołowski D.
title FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
title_short FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
title_full FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
title_fullStr FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
title_full_unstemmed FEM Study of a Steel Corrugated Web Plate Girder Subjected to Fire
title_sort fem study of a steel corrugated web plate girder subjected to fire
publisher Sciendo
series International Journal of Applied Mechanics and Engineering
issn 2353-9003
publishDate 2021-06-01
description The main aim of this work is a computational nonlinear analysis of a high strength steel corrugated-web plate girder with a very detailed and realistic mesh including vertical ribs, all the fillet welds and supporting areas. The analysis is carried out to verify mechanical structural response under transient fire temperature conditions accounting for an efficiency and accuracy of three various transient coupled thermo-elastic models. All the resulting stress distributions, deformation modes and their time variations, critical loads and eigenfrequencies as well as failure times are compared in all these models. Nonlinearities include material, geometrical and contact phenomena up to the temperature fluctuations together with temperature-dependent constitutive relations for high strength steel. They result partially from steady state and transient experimental tests or from the additional designing rules included in Eurocodes. A fire scenario includes an application of the normative fire gas temperature curve on the bottom flange of the entire girder for a period of 180 minutes. It is computed using sequentially coupled thermo-elastic Finite Element Method analyses. These account for heat conductivity, radiation and convection. The FEM model consists of a combination of 3D hexahedral and tetrahedral solid finite elements and uses temperature-dependent material and physical parameters, whose values are taken after the experiments presented in Eurocodes. Numerical results presented here demonstrate a fundamental role of the lower flange in carrying fire loads according to this scenario and show a contribution of the ribs and of the welds to the strength of the entire structure.
topic steel structures
finite element method
corrugated web plate girders
fire simulation
url https://doi.org/10.2478/ijame-2021-0028
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