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Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement

Engineered cementitious composites (ECCs) are potentially useful structural reinforcement and repair materials. However, owing to their high costs and carbon emissions, they are not used extensively. To control these carbon emissions and costs, recycled fly ash cenospheres (FACs) and high-strength p...

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Autores principales: Fu, Chaoshu, Chen, Mingzhao, Guo, Rongxin, Qi, Rongqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9099887/
https://www.ncbi.nlm.nih.gov/pubmed/35591382
http://dx.doi.org/10.3390/ma15093047
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author Fu, Chaoshu
Chen, Mingzhao
Guo, Rongxin
Qi, Rongqing
author_facet Fu, Chaoshu
Chen, Mingzhao
Guo, Rongxin
Qi, Rongqing
author_sort Fu, Chaoshu
collection PubMed
description Engineered cementitious composites (ECCs) are potentially useful structural reinforcement and repair materials. However, owing to their high costs and carbon emissions, they are not used extensively. To control these carbon emissions and costs, recycled fly ash cenospheres (FACs) and high-strength polyethylene (PE) fibers are used here to explore the possibility of developing green lightweight ECCs (GLECCs). A series of experiments was conducted to test the physical and mechanical properties of the developed GLECC and to evaluate the possibility of developing an GLECC. The crack width development of the GLECC was also analyzed using the digital image correlation method. The experimental results indicate the following: (1) The increase in FAC content and the decrease in PE content worsened the performance of GLECCs, but the resulting GLECCs still had significant strain-hardening properties; (2) The performance and costs of GLECCs can be balanced by adjusting the amount of FAC and PE. The maximum amount of FACs attainable is 0.45 (FAC/binder), and the required amount of PE fibers can be reduced to 1%. As a result, the cost was reduced by 40% and the carbon emission was reduced by 36%, while the compressive strength was greater than 30 MPa, the tensile strength was greater than 3.5 MPa, and the tensile strain was nearly 3%. (3) The width of the crack was positively correlated with the FAC content and negatively correlated with the fiber content. In the 0.8% strain range, the average crack width can be controlled to within 100 μm and the maximum crack width can be controlled to within 150 μm, with the performance still meeting the requirements of many applications.
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spelling pubmed-90998872022-05-14 Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement Fu, Chaoshu Chen, Mingzhao Guo, Rongxin Qi, Rongqing Materials (Basel) Article Engineered cementitious composites (ECCs) are potentially useful structural reinforcement and repair materials. However, owing to their high costs and carbon emissions, they are not used extensively. To control these carbon emissions and costs, recycled fly ash cenospheres (FACs) and high-strength polyethylene (PE) fibers are used here to explore the possibility of developing green lightweight ECCs (GLECCs). A series of experiments was conducted to test the physical and mechanical properties of the developed GLECC and to evaluate the possibility of developing an GLECC. The crack width development of the GLECC was also analyzed using the digital image correlation method. The experimental results indicate the following: (1) The increase in FAC content and the decrease in PE content worsened the performance of GLECCs, but the resulting GLECCs still had significant strain-hardening properties; (2) The performance and costs of GLECCs can be balanced by adjusting the amount of FAC and PE. The maximum amount of FACs attainable is 0.45 (FAC/binder), and the required amount of PE fibers can be reduced to 1%. As a result, the cost was reduced by 40% and the carbon emission was reduced by 36%, while the compressive strength was greater than 30 MPa, the tensile strength was greater than 3.5 MPa, and the tensile strain was nearly 3%. (3) The width of the crack was positively correlated with the FAC content and negatively correlated with the fiber content. In the 0.8% strain range, the average crack width can be controlled to within 100 μm and the maximum crack width can be controlled to within 150 μm, with the performance still meeting the requirements of many applications. MDPI 2022-04-22 /pmc/articles/PMC9099887/ /pubmed/35591382 http://dx.doi.org/10.3390/ma15093047 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
Fu, Chaoshu
Chen, Mingzhao
Guo, Rongxin
Qi, Rongqing
Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title_full Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title_fullStr Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title_full_unstemmed Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title_short Green-Engineered Cementitious Composite Production with High-Strength Synthetic Fiber and Aggregate Replacement
title_sort green-engineered cementitious composite production with high-strength synthetic fiber and aggregate replacement
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9099887/
https://www.ncbi.nlm.nih.gov/pubmed/35591382
http://dx.doi.org/10.3390/ma15093047
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