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The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS

Currently, Nano-materials are gaining popularity in the building industry due to their high performance in terms of sustainability and smart functionality. In order to reduce cement production and CO(2) emissions, nano-silica (NS) has been frequently utilized as a cement alternative and concrete add...

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Autores principales: Min, Ji, Zandi, Yousef, Agdas, Alireza Sadighi, Majdi, Ali, Ali, H. Elhosiny, Jan, Amin, Salameh, Anas A., Ebid, Ahmed Abdel Khalek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9141440/
https://www.ncbi.nlm.nih.gov/pubmed/35621597
http://dx.doi.org/10.3390/gels8050299
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author Min, Ji
Zandi, Yousef
Agdas, Alireza Sadighi
Majdi, Ali
Ali, H. Elhosiny
Jan, Amin
Salameh, Anas A.
Ebid, Ahmed Abdel Khalek
author_facet Min, Ji
Zandi, Yousef
Agdas, Alireza Sadighi
Majdi, Ali
Ali, H. Elhosiny
Jan, Amin
Salameh, Anas A.
Ebid, Ahmed Abdel Khalek
author_sort Min, Ji
collection PubMed
description Currently, Nano-materials are gaining popularity in the building industry due to their high performance in terms of sustainability and smart functionality. In order to reduce cement production and CO(2) emissions, nano-silica (NS) has been frequently utilized as a cement alternative and concrete addition. The influence of Nano-silica-containing hydrogels on the mechanical strength, electrical resistivity, and autogenous shrinkage of cement pastes was investigated. The goal of this study was to identify the main structure–property relationships of water-swollen polymer hydrogel particles used as internal curing agents in cementitious admixtures, as well as to report a unique synthesis process to combine pozzolanic materials with hydrogel particles and determine the replenishment of hydrogel void space. Experiments were designed to measure the absorption capacity and kinetics of hydrogel particles immersed in pure water and cementitious pore solution, as well as to precisely analyze the data derived from the tests using hybridized soft computing models such as Extreme learning machine (ELM) and Adaptive neuro-fuzzy inference system (ANFIS). The models were developed, and the findings were measured using regression indices (RMSE and R2). The findings indicated that combining nano-silica with polymeric hydrogel particles creates a favorable environment for the pozzolanic reaction to occur, and that nano-silica assists in the refilling of hydrogel void space with hydrated cement phases.
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spelling pubmed-91414402022-05-28 The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS Min, Ji Zandi, Yousef Agdas, Alireza Sadighi Majdi, Ali Ali, H. Elhosiny Jan, Amin Salameh, Anas A. Ebid, Ahmed Abdel Khalek Gels Article Currently, Nano-materials are gaining popularity in the building industry due to their high performance in terms of sustainability and smart functionality. In order to reduce cement production and CO(2) emissions, nano-silica (NS) has been frequently utilized as a cement alternative and concrete addition. The influence of Nano-silica-containing hydrogels on the mechanical strength, electrical resistivity, and autogenous shrinkage of cement pastes was investigated. The goal of this study was to identify the main structure–property relationships of water-swollen polymer hydrogel particles used as internal curing agents in cementitious admixtures, as well as to report a unique synthesis process to combine pozzolanic materials with hydrogel particles and determine the replenishment of hydrogel void space. Experiments were designed to measure the absorption capacity and kinetics of hydrogel particles immersed in pure water and cementitious pore solution, as well as to precisely analyze the data derived from the tests using hybridized soft computing models such as Extreme learning machine (ELM) and Adaptive neuro-fuzzy inference system (ANFIS). The models were developed, and the findings were measured using regression indices (RMSE and R2). The findings indicated that combining nano-silica with polymeric hydrogel particles creates a favorable environment for the pozzolanic reaction to occur, and that nano-silica assists in the refilling of hydrogel void space with hydrated cement phases. MDPI 2022-05-13 /pmc/articles/PMC9141440/ /pubmed/35621597 http://dx.doi.org/10.3390/gels8050299 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
Min, Ji
Zandi, Yousef
Agdas, Alireza Sadighi
Majdi, Ali
Ali, H. Elhosiny
Jan, Amin
Salameh, Anas A.
Ebid, Ahmed Abdel Khalek
The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title_full The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title_fullStr The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title_full_unstemmed The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title_short The Numerical Analysis of Replenishment of Hydrogel Void Space Concrete Using Hydrogels Containing Nano-Silica Particles through ELM-ANFIS
title_sort numerical analysis of replenishment of hydrogel void space concrete using hydrogels containing nano-silica particles through elm-anfis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9141440/
https://www.ncbi.nlm.nih.gov/pubmed/35621597
http://dx.doi.org/10.3390/gels8050299
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