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Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment

The acid–alkaline-inducd corrosive environments inside wastewater concrete pipelines cause concrete structural deterioration and substantial economic losses all over the world. High-performance concrete/mortar (HPC) was designed to have better resistance to corrosive environments, with enhanced serv...

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Autores principales: Wang, Tianyu, Zhao, Yahong, Ma, Baosong, Zeng, Cong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306014/
https://www.ncbi.nlm.nih.gov/pubmed/34300701
http://dx.doi.org/10.3390/ma14143781
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author Wang, Tianyu
Zhao, Yahong
Ma, Baosong
Zeng, Cong
author_facet Wang, Tianyu
Zhao, Yahong
Ma, Baosong
Zeng, Cong
author_sort Wang, Tianyu
collection PubMed
description The acid–alkaline-inducd corrosive environments inside wastewater concrete pipelines cause concrete structural deterioration and substantial economic losses all over the world. High-performance concrete/mortar (HPC) was designed to have better resistance to corrosive environments, with enhanced service life. However, the durability of HPC in wastewater pipeline environments has rarely been studied. A high-performance mortar mixture (M) reinforced by supplemental materials (including fly ash and silica fume) and polyvinyl alcohol (PVA) fibers, together with a mortar mixture (P) consisting of cement, sand and water with similar mechanical performance, were both designed and exposed to simulated wastewater pipeline environments. The visual appearance, dimensional variation, mass loss, mechanical properties, permeable pore volume, and microstructure of the specimens were measured during the corrosion cycles. More severe deterioration was observed when the alkaline environment was introduced into the corrosion cycles. Test results showed that the M specimens had less permeable pore volume, better dimensional stability, and denser microstructure than the P specimens under acid–alkaline-induced corrosive environments. The mass-loss rates of the M specimens were 66.1–77.2% of the P specimens after 12 corrosion cycles. The compressive strength of the M specimens was 25.5–37.3% higher than the P specimens after 12 cycles under corrosive environments. Hence, the high-performance mortar examined in this study was considered superior to traditional cementitious materials for wastewater pipeline construction and rehabilitation.
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spelling pubmed-83060142021-07-25 Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment Wang, Tianyu Zhao, Yahong Ma, Baosong Zeng, Cong Materials (Basel) Article The acid–alkaline-inducd corrosive environments inside wastewater concrete pipelines cause concrete structural deterioration and substantial economic losses all over the world. High-performance concrete/mortar (HPC) was designed to have better resistance to corrosive environments, with enhanced service life. However, the durability of HPC in wastewater pipeline environments has rarely been studied. A high-performance mortar mixture (M) reinforced by supplemental materials (including fly ash and silica fume) and polyvinyl alcohol (PVA) fibers, together with a mortar mixture (P) consisting of cement, sand and water with similar mechanical performance, were both designed and exposed to simulated wastewater pipeline environments. The visual appearance, dimensional variation, mass loss, mechanical properties, permeable pore volume, and microstructure of the specimens were measured during the corrosion cycles. More severe deterioration was observed when the alkaline environment was introduced into the corrosion cycles. Test results showed that the M specimens had less permeable pore volume, better dimensional stability, and denser microstructure than the P specimens under acid–alkaline-induced corrosive environments. The mass-loss rates of the M specimens were 66.1–77.2% of the P specimens after 12 corrosion cycles. The compressive strength of the M specimens was 25.5–37.3% higher than the P specimens after 12 cycles under corrosive environments. Hence, the high-performance mortar examined in this study was considered superior to traditional cementitious materials for wastewater pipeline construction and rehabilitation. MDPI 2021-07-06 /pmc/articles/PMC8306014/ /pubmed/34300701 http://dx.doi.org/10.3390/ma14143781 Text en © 2021 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
Wang, Tianyu
Zhao, Yahong
Ma, Baosong
Zeng, Cong
Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title_full Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title_fullStr Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title_full_unstemmed Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title_short Durability Study on High-Performance Fiber-Reinforced Mortar under Simulated Wastewater Pipeline Environment
title_sort durability study on high-performance fiber-reinforced mortar under simulated wastewater pipeline environment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306014/
https://www.ncbi.nlm.nih.gov/pubmed/34300701
http://dx.doi.org/10.3390/ma14143781
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AT zhaoyahong durabilitystudyonhighperformancefiberreinforcedmortarundersimulatedwastewaterpipelineenvironment
AT mabaosong durabilitystudyonhighperformancefiberreinforcedmortarundersimulatedwastewaterpipelineenvironment
AT zengcong durabilitystudyonhighperformancefiberreinforcedmortarundersimulatedwastewaterpipelineenvironment