APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES

The Finite Element Method (FEM) and the other numerical strategies are viably actualized in linear and non-linear analysis of structures. Recently, a new displacement based on Applied Element Method (AEM) has been developed. It is applicable for static and dynamic for both linear and non-linear anal...

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Main Authors: Osama El-Mahdy, El-Sayed El-Kasaby, Hala Abusafa, Amr El-Gamal
Format: Article
Language:ces
Published: Czech Technical University, Prague 2017-10-01
Series:Civil Engineering Journal
Subjects:
Online Access:http://www.civilengineeringjournal.cz/archive/issues/2017/2017_3/3-2017-0027.pdf
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spelling doaj-e65cf9ac39904b9fb7c8b4abc95bf57d2020-11-25T00:55:12ZcesCzech Technical University, PragueCivil Engineering Journal1805-25762017-10-012017331533210.14311/CEJ.2017.03.0027APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURESOsama El-Mahdy0El-Sayed El-Kasaby1Hala Abusafa2Amr El-Gamal31. Department of Civil Engineering, Faculty of Engineering at Shoubra, Benha University, Shoubra, Cairo, Egypt2. Department of Civil Engineering, Benha Faculty of Engineering, Benha University, Benha, Egypt2. Department of Civil Engineering, Benha Faculty of Engineering, Benha University, Benha, Egypt2. Department of Civil Engineering, Benha Faculty of Engineering, Benha University, Benha, EgyptThe Finite Element Method (FEM) and the other numerical strategies are viably actualized in linear and non-linear analysis of structures. Recently, a new displacement based on Applied Element Method (AEM) has been developed. It is applicable for static and dynamic for both linear and non-linear analysis of framed and continuum structures. In AEM, the structural member is partitioned into virtual elements connected through normal and shear springs representing stresses and strains of certain portion of structure. FEM assumes the material as continuous and can indicate highly stressed region of structure, however it is difficult to model separation of element unless crack location is known. The main advantage of AEM is that it can track the structural collapse behavior going through all phases of the application of loads. In the current research, the application of AEM is illustrated through a non-linear dynamic analysis. Progressive collapse simulation is conducted using Extreme Loading for Structures software (ELS), which follows the AEM. The experimental and analytical works carried by Park et al. [17 and 28] for 1/5 scaled 3 and 5 stories reinforced concrete structures are used for verification. Good matching between the experimental and numerical results has been obtained using ELS. Therefore, it can be confirmed that ELS is capable in simulating the structures’ behavior up to collapse. Furthermore, a study has been made to investigate the effect of considering the floor slabs on progressive collapse. The results show that considering slab in progressive collapse analysis of multistory buildings is important as neglecting the slabs’ contribution leads to incorrect simulation and uneconomic design. http://www.civilengineeringjournal.cz/archive/issues/2017/2017_3/3-2017-0027.pdfApplied element methodProgressive collapse analysisExtreme loading for structuresReinforced concrete structuresDynamic analysisSlab contribution
collection DOAJ
language ces
format Article
sources DOAJ
author Osama El-Mahdy
El-Sayed El-Kasaby
Hala Abusafa
Amr El-Gamal
spellingShingle Osama El-Mahdy
El-Sayed El-Kasaby
Hala Abusafa
Amr El-Gamal
APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
Civil Engineering Journal
Applied element method
Progressive collapse analysis
Extreme loading for structures
Reinforced concrete structures
Dynamic analysis
Slab contribution
author_facet Osama El-Mahdy
El-Sayed El-Kasaby
Hala Abusafa
Amr El-Gamal
author_sort Osama El-Mahdy
title APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
title_short APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
title_full APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
title_fullStr APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
title_full_unstemmed APPLICATION OF AEM IN PROGRESSIVE COLLAPSE DYNAMICS ANALYSIS OF R.C. STRUCTURES
title_sort application of aem in progressive collapse dynamics analysis of r.c. structures
publisher Czech Technical University, Prague
series Civil Engineering Journal
issn 1805-2576
publishDate 2017-10-01
description The Finite Element Method (FEM) and the other numerical strategies are viably actualized in linear and non-linear analysis of structures. Recently, a new displacement based on Applied Element Method (AEM) has been developed. It is applicable for static and dynamic for both linear and non-linear analysis of framed and continuum structures. In AEM, the structural member is partitioned into virtual elements connected through normal and shear springs representing stresses and strains of certain portion of structure. FEM assumes the material as continuous and can indicate highly stressed region of structure, however it is difficult to model separation of element unless crack location is known. The main advantage of AEM is that it can track the structural collapse behavior going through all phases of the application of loads. In the current research, the application of AEM is illustrated through a non-linear dynamic analysis. Progressive collapse simulation is conducted using Extreme Loading for Structures software (ELS), which follows the AEM. The experimental and analytical works carried by Park et al. [17 and 28] for 1/5 scaled 3 and 5 stories reinforced concrete structures are used for verification. Good matching between the experimental and numerical results has been obtained using ELS. Therefore, it can be confirmed that ELS is capable in simulating the structures’ behavior up to collapse. Furthermore, a study has been made to investigate the effect of considering the floor slabs on progressive collapse. The results show that considering slab in progressive collapse analysis of multistory buildings is important as neglecting the slabs’ contribution leads to incorrect simulation and uneconomic design.
topic Applied element method
Progressive collapse analysis
Extreme loading for structures
Reinforced concrete structures
Dynamic analysis
Slab contribution
url http://www.civilengineeringjournal.cz/archive/issues/2017/2017_3/3-2017-0027.pdf
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