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GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism

Reinforced concrete structures are subjected to frequent maintenance and repairs due to steel reinforcement corrosion. Fiber-reinforced polymer (FRP) laminates are widely used for retrofitting beams, columns, joints, and slabs. This study investigated the non-linear capability of artificial intellig...

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Autores principales: Amin, Muhammad Nasir, Iqbal, Mudassir, Jamal, Arshad, Ullah, Shahid, Khan, Kaffayatullah, Abu-Arab, Abdullah M., Al-Ahmad, Qasem M. S., Khan, Sikandar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143863/
https://www.ncbi.nlm.nih.gov/pubmed/35631902
http://dx.doi.org/10.3390/polym14102016
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author Amin, Muhammad Nasir
Iqbal, Mudassir
Jamal, Arshad
Ullah, Shahid
Khan, Kaffayatullah
Abu-Arab, Abdullah M.
Al-Ahmad, Qasem M. S.
Khan, Sikandar
author_facet Amin, Muhammad Nasir
Iqbal, Mudassir
Jamal, Arshad
Ullah, Shahid
Khan, Kaffayatullah
Abu-Arab, Abdullah M.
Al-Ahmad, Qasem M. S.
Khan, Sikandar
author_sort Amin, Muhammad Nasir
collection PubMed
description Reinforced concrete structures are subjected to frequent maintenance and repairs due to steel reinforcement corrosion. Fiber-reinforced polymer (FRP) laminates are widely used for retrofitting beams, columns, joints, and slabs. This study investigated the non-linear capability of artificial intelligence (AI)-based gene expression programming (GEP) modelling to develop a mathematical relationship for estimating the interfacial bond strength (IBS) of FRP laminates on a concrete prism with grooves. The model was based on five input parameters, namely axial stiffness (E(f)t(f)), width of FRP plate (b(f)), concrete compressive strength (f(c)′), width of groove (b(g)), and depth of the groove (h(g)), and IBS was considered the target variable. Ten trials were conducted based on varying genetic parameters, namely the number of chromosomes, head size, and number of genes. The performance of the models was evaluated using the correlation coefficient (R), mean absolute error (MAE), and root mean square error (RMSE). The genetic variation revealed that optimum performance was obtained for 30 chromosomes, 11 head sizes, and 4 genes. The values of R, MAE, and RMSE were observed as 0.967, 0.782 kN, and 1.049 kN for training and 0.961, 1.027 kN, and 1.354 kN. The developed model reflected close agreement between experimental and predicted results. This implies that the developed mathematical equation was reliable in estimating IBS based on the available properties of FRPs. The sensitivity and parametric analysis showed that the axial stiffness and width of FRP are the most influential parameters in contributing to IBS.
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spelling pubmed-91438632022-05-29 GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism Amin, Muhammad Nasir Iqbal, Mudassir Jamal, Arshad Ullah, Shahid Khan, Kaffayatullah Abu-Arab, Abdullah M. Al-Ahmad, Qasem M. S. Khan, Sikandar Polymers (Basel) Article Reinforced concrete structures are subjected to frequent maintenance and repairs due to steel reinforcement corrosion. Fiber-reinforced polymer (FRP) laminates are widely used for retrofitting beams, columns, joints, and slabs. This study investigated the non-linear capability of artificial intelligence (AI)-based gene expression programming (GEP) modelling to develop a mathematical relationship for estimating the interfacial bond strength (IBS) of FRP laminates on a concrete prism with grooves. The model was based on five input parameters, namely axial stiffness (E(f)t(f)), width of FRP plate (b(f)), concrete compressive strength (f(c)′), width of groove (b(g)), and depth of the groove (h(g)), and IBS was considered the target variable. Ten trials were conducted based on varying genetic parameters, namely the number of chromosomes, head size, and number of genes. The performance of the models was evaluated using the correlation coefficient (R), mean absolute error (MAE), and root mean square error (RMSE). The genetic variation revealed that optimum performance was obtained for 30 chromosomes, 11 head sizes, and 4 genes. The values of R, MAE, and RMSE were observed as 0.967, 0.782 kN, and 1.049 kN for training and 0.961, 1.027 kN, and 1.354 kN. The developed model reflected close agreement between experimental and predicted results. This implies that the developed mathematical equation was reliable in estimating IBS based on the available properties of FRPs. The sensitivity and parametric analysis showed that the axial stiffness and width of FRP are the most influential parameters in contributing to IBS. MDPI 2022-05-16 /pmc/articles/PMC9143863/ /pubmed/35631902 http://dx.doi.org/10.3390/polym14102016 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
Amin, Muhammad Nasir
Iqbal, Mudassir
Jamal, Arshad
Ullah, Shahid
Khan, Kaffayatullah
Abu-Arab, Abdullah M.
Al-Ahmad, Qasem M. S.
Khan, Sikandar
GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title_full GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title_fullStr GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title_full_unstemmed GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title_short GEP Tree-Based Prediction Model for Interfacial Bond Strength of Externally Bonded FRP Laminates on Grooves with Concrete Prism
title_sort gep tree-based prediction model for interfacial bond strength of externally bonded frp laminates on grooves with concrete prism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143863/
https://www.ncbi.nlm.nih.gov/pubmed/35631902
http://dx.doi.org/10.3390/polym14102016
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