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Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model

The composite shear wall has various merits over the traditional reinforced concrete walls. Thus, several experimental studies have been reported in the literature in order to study the seismic behavior of composite shear walls. However, few numerical investigations were found in the previous litera...

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Autores principales: Najm, Hadee Mohammed, Ibrahim, Amer M., Sabri, Mohanad Muayad Sabri, Hassan, Amer, Morkhade, Samadhan, Mashaan, Nuha S., Eldirderi, Moutaz Mustafa A., Khedher, Khaled Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9267191/
https://www.ncbi.nlm.nih.gov/pubmed/35806621
http://dx.doi.org/10.3390/ma15134496
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author Najm, Hadee Mohammed
Ibrahim, Amer M.
Sabri, Mohanad Muayad Sabri
Hassan, Amer
Morkhade, Samadhan
Mashaan, Nuha S.
Eldirderi, Moutaz Mustafa A.
Khedher, Khaled Mohamed
author_facet Najm, Hadee Mohammed
Ibrahim, Amer M.
Sabri, Mohanad Muayad Sabri
Hassan, Amer
Morkhade, Samadhan
Mashaan, Nuha S.
Eldirderi, Moutaz Mustafa A.
Khedher, Khaled Mohamed
author_sort Najm, Hadee Mohammed
collection PubMed
description The composite shear wall has various merits over the traditional reinforced concrete walls. Thus, several experimental studies have been reported in the literature in order to study the seismic behavior of composite shear walls. However, few numerical investigations were found in the previous literature because of difficulties in the interaction behavior of steel and concrete. This study aimed to present a numerical analysis of smart composite shear walls, which use an infilled steel plate and concrete. The study was carried out using the ANSYS software. The mechanical mechanisms between the web plate and concrete were investigated thoroughly. The results obtained from the finite element (FE) analysis show excellent agreement with the experimental test results in terms of the hysteresis curves, failure behavior, ultimate strength, initial stiffness, and ductility. The present numerical investigations were focused on the effects of the gap, thickness of infill steel plate, thickness of the concrete wall, and distance between shear studs on the composite steel plate shear wall (CSPSW) behavior. The results indicate that increasing the gap between steel plate and concrete wall from 0 mm to 40 mm improved the stiffness by 18% as compared to the reference model, which led to delay failures of this model. Expanding the infill steel plate thickness to 12 mm enhanced the stiffness and energy absorption with a ratio of 95% and 58%, respectively. This resulted in a gradual drop in the strength capacity of this model. Meanwhile, increasing concrete wall thickness to 150 mm enhanced the ductility and energy absorption with a ratio of 52% and 32%, respectively, which led to restricting the model and reduced lateral offset. Changing the distance between shear studs from 20% to 25% enhanced the ductility and energy absorption by about 66% and 32%, respectively.
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spelling pubmed-92671912022-07-09 Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model Najm, Hadee Mohammed Ibrahim, Amer M. Sabri, Mohanad Muayad Sabri Hassan, Amer Morkhade, Samadhan Mashaan, Nuha S. Eldirderi, Moutaz Mustafa A. Khedher, Khaled Mohamed Materials (Basel) Article The composite shear wall has various merits over the traditional reinforced concrete walls. Thus, several experimental studies have been reported in the literature in order to study the seismic behavior of composite shear walls. However, few numerical investigations were found in the previous literature because of difficulties in the interaction behavior of steel and concrete. This study aimed to present a numerical analysis of smart composite shear walls, which use an infilled steel plate and concrete. The study was carried out using the ANSYS software. The mechanical mechanisms between the web plate and concrete were investigated thoroughly. The results obtained from the finite element (FE) analysis show excellent agreement with the experimental test results in terms of the hysteresis curves, failure behavior, ultimate strength, initial stiffness, and ductility. The present numerical investigations were focused on the effects of the gap, thickness of infill steel plate, thickness of the concrete wall, and distance between shear studs on the composite steel plate shear wall (CSPSW) behavior. The results indicate that increasing the gap between steel plate and concrete wall from 0 mm to 40 mm improved the stiffness by 18% as compared to the reference model, which led to delay failures of this model. Expanding the infill steel plate thickness to 12 mm enhanced the stiffness and energy absorption with a ratio of 95% and 58%, respectively. This resulted in a gradual drop in the strength capacity of this model. Meanwhile, increasing concrete wall thickness to 150 mm enhanced the ductility and energy absorption with a ratio of 52% and 32%, respectively, which led to restricting the model and reduced lateral offset. Changing the distance between shear studs from 20% to 25% enhanced the ductility and energy absorption by about 66% and 32%, respectively. MDPI 2022-06-26 /pmc/articles/PMC9267191/ /pubmed/35806621 http://dx.doi.org/10.3390/ma15134496 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Najm, Hadee Mohammed
Ibrahim, Amer M.
Sabri, Mohanad Muayad Sabri
Hassan, Amer
Morkhade, Samadhan
Mashaan, Nuha S.
Eldirderi, Moutaz Mustafa A.
Khedher, Khaled Mohamed
Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title_full Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title_fullStr Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title_full_unstemmed Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title_short Evaluation and Numerical Investigations of the Cyclic Behavior of Smart Composite Steel–Concrete Shear Wall: Comprehensive Study of Finite Element Model
title_sort evaluation and numerical investigations of the cyclic behavior of smart composite steel–concrete shear wall: comprehensive study of finite element model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9267191/
https://www.ncbi.nlm.nih.gov/pubmed/35806621
http://dx.doi.org/10.3390/ma15134496
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