Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures

This paper aims to demonstrate the self-protection and self-sensing functionalities of self-compacted concrete (SCC) containing carbon nanotubes (CNT) and carbon microfibers (CMF) in a hybrid system. The ability for self-sensing at room temperature and that of self-protection after thermal fatigue c...

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Main Authors: Alonso Maria Cruz, Puentes Javier
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Materials
Subjects:
scc
pzr
cnt
cmf
Online Access:https://www.mdpi.com/1996-1944/13/5/1106
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spelling doaj-e4d102d3d8ca4505a70b547e84e9e9a32020-11-25T02:09:20ZengMDPI AGMaterials1996-19442020-03-01135110610.3390/ma13051106ma13051106Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy InfrastructuresAlonso Maria Cruz0Puentes Javier1Eduardo Torroja Institute for Construction Sciences (IETcc-CSIC), Construction Dpt. Serrano Galvache 4, 28033 Madrid, SpainEduardo Torroja Institute for Construction Sciences (IETcc-CSIC), Construction Dpt. Serrano Galvache 4, 28033 Madrid, SpainThis paper aims to demonstrate the self-protection and self-sensing functionalities of self-compacted concrete (SCC) containing carbon nanotubes (CNT) and carbon microfibers (CMF) in a hybrid system. The ability for self-sensing at room temperature and that of self-protection after thermal fatigue cycles is evaluated. A binder containing a high volume of supplementary mineral additions (30%BFSand20%FA) and different type of aggregates (basalt, limestone, and clinker) are used. The self-diagnosis is assessed measuring electrical resistivity (ER) and piezoresistivity (PZR) in compression mode within the elastic region of the concrete. Thermal fatigue is evaluated with mechanical and crack measurements after heat cycles (290−550 °C). SCC withstands high temperature cycles. The protective effect of the hybrid additive (CNT+CMF) notably diminishes damage by keepinghigher residual strength and lessmicrocracking of the concrete. Significant reductions in ER are detected. The self-diagnosis ability of functionalized SCC isconfirmed with PZR. A content of the hybrid functional additive (CNT+CMF) in the percolation region is recommended to maximize the self-sensing sensitivity. Other parameters as sample geometry, sensor location, power supply, and load level have less influence.https://www.mdpi.com/1996-1944/13/5/1106sccself-diagnosiselectrical resistivitypzrcntcmfthermal fatigue
collection DOAJ
language English
format Article
sources DOAJ
author Alonso Maria Cruz
Puentes Javier
spellingShingle Alonso Maria Cruz
Puentes Javier
Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
Materials
scc
self-diagnosis
electrical resistivity
pzr
cnt
cmf
thermal fatigue
author_facet Alonso Maria Cruz
Puentes Javier
author_sort Alonso Maria Cruz
title Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
title_short Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
title_full Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
title_fullStr Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
title_full_unstemmed Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures
title_sort self-compacted concrete with self-protection and self-sensing functionality for energy infrastructures
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-03-01
description This paper aims to demonstrate the self-protection and self-sensing functionalities of self-compacted concrete (SCC) containing carbon nanotubes (CNT) and carbon microfibers (CMF) in a hybrid system. The ability for self-sensing at room temperature and that of self-protection after thermal fatigue cycles is evaluated. A binder containing a high volume of supplementary mineral additions (30%BFSand20%FA) and different type of aggregates (basalt, limestone, and clinker) are used. The self-diagnosis is assessed measuring electrical resistivity (ER) and piezoresistivity (PZR) in compression mode within the elastic region of the concrete. Thermal fatigue is evaluated with mechanical and crack measurements after heat cycles (290−550 °C). SCC withstands high temperature cycles. The protective effect of the hybrid additive (CNT+CMF) notably diminishes damage by keepinghigher residual strength and lessmicrocracking of the concrete. Significant reductions in ER are detected. The self-diagnosis ability of functionalized SCC isconfirmed with PZR. A content of the hybrid functional additive (CNT+CMF) in the percolation region is recommended to maximize the self-sensing sensitivity. Other parameters as sample geometry, sensor location, power supply, and load level have less influence.
topic scc
self-diagnosis
electrical resistivity
pzr
cnt
cmf
thermal fatigue
url https://www.mdpi.com/1996-1944/13/5/1106
work_keys_str_mv AT alonsomariacruz selfcompactedconcretewithselfprotectionandselfsensingfunctionalityforenergyinfrastructures
AT puentesjavier selfcompactedconcretewithselfprotectionandselfsensingfunctionalityforenergyinfrastructures
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