Self-monitoring application of conductive asphalt concrete under indirect tensile deformation

Conductive asphalt concrete has excellent self-monitoring abilities for internal damage and attractive application prospects. By studying the resistance and strain changes under indirect tensile deformation, three distinct stages of output resistivity changes are observed during the destruction of t...

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Main Authors: Xiaoming Liu, Zhihong Nie, Shaopeng Wu, Cui Wang
Format: Article
Language:English
Published: Elsevier 2015-12-01
Series:Case Studies in Construction Materials
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214509515300073
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spelling doaj-b8440ae0e5d94919b67fd52c782458ae2020-11-24T22:42:47ZengElsevierCase Studies in Construction Materials2214-50952015-12-013C707710.1016/j.cscm.2015.07.002Self-monitoring application of conductive asphalt concrete under indirect tensile deformationXiaoming Liu0Zhihong Nie1Shaopeng Wu2Cui Wang3School of Civil Engineering, Central South University, Changsha 410075, ChinaSchool of Civil Engineering, Central South University, Changsha 410075, ChinaState Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan 430070, ChinaSchool of Civil Engineering, Central South University, Changsha 410075, ChinaConductive asphalt concrete has excellent self-monitoring abilities for internal damage and attractive application prospects. By studying the resistance and strain changes under indirect tensile deformation, three distinct stages of output resistivity changes are observed during the destruction of the specimen. In the initial loading stages, contact between the mixture particles tightens because the specimen under loading forms a more conductive path, and the resistivity decreases significantly. In the second stage, asphalt concrete deforms smoothly; small changes in the interior of the asphalt concrete also correspond to small changes in resistivity. In the final stage, because of the progressive development of cracks in asphalt concrete, the specimens are destroyed, and the conductive paths are also seriously damaged, significantly increasing resistivity. This change in the resistivity value exceeds 50%. Conductive asphalt concrete also has a good self-monitoring ability regarding the strain caused by the applied stress. The unit strain corresponding to changes in resistivity is greater when graphite content is lower. CT (Computer Tomography)identification can confirm that changes in resistivity are caused by material changes in the interior due to fatigue failure. The decrease or increase in resistivity is the result of a decrease or increase in the internal porosity of the material.http://www.sciencedirect.com/science/article/pii/S2214509515300073self-monitoringconductiveasphalt concreteindirect tensile deformationCT identification
collection DOAJ
language English
format Article
sources DOAJ
author Xiaoming Liu
Zhihong Nie
Shaopeng Wu
Cui Wang
spellingShingle Xiaoming Liu
Zhihong Nie
Shaopeng Wu
Cui Wang
Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
Case Studies in Construction Materials
self-monitoring
conductive
asphalt concrete
indirect tensile deformation
CT identification
author_facet Xiaoming Liu
Zhihong Nie
Shaopeng Wu
Cui Wang
author_sort Xiaoming Liu
title Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
title_short Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
title_full Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
title_fullStr Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
title_full_unstemmed Self-monitoring application of conductive asphalt concrete under indirect tensile deformation
title_sort self-monitoring application of conductive asphalt concrete under indirect tensile deformation
publisher Elsevier
series Case Studies in Construction Materials
issn 2214-5095
publishDate 2015-12-01
description Conductive asphalt concrete has excellent self-monitoring abilities for internal damage and attractive application prospects. By studying the resistance and strain changes under indirect tensile deformation, three distinct stages of output resistivity changes are observed during the destruction of the specimen. In the initial loading stages, contact between the mixture particles tightens because the specimen under loading forms a more conductive path, and the resistivity decreases significantly. In the second stage, asphalt concrete deforms smoothly; small changes in the interior of the asphalt concrete also correspond to small changes in resistivity. In the final stage, because of the progressive development of cracks in asphalt concrete, the specimens are destroyed, and the conductive paths are also seriously damaged, significantly increasing resistivity. This change in the resistivity value exceeds 50%. Conductive asphalt concrete also has a good self-monitoring ability regarding the strain caused by the applied stress. The unit strain corresponding to changes in resistivity is greater when graphite content is lower. CT (Computer Tomography)identification can confirm that changes in resistivity are caused by material changes in the interior due to fatigue failure. The decrease or increase in resistivity is the result of a decrease or increase in the internal porosity of the material.
topic self-monitoring
conductive
asphalt concrete
indirect tensile deformation
CT identification
url http://www.sciencedirect.com/science/article/pii/S2214509515300073
work_keys_str_mv AT xiaomingliu selfmonitoringapplicationofconductiveasphaltconcreteunderindirecttensiledeformation
AT zhihongnie selfmonitoringapplicationofconductiveasphaltconcreteunderindirecttensiledeformation
AT shaopengwu selfmonitoringapplicationofconductiveasphaltconcreteunderindirecttensiledeformation
AT cuiwang selfmonitoringapplicationofconductiveasphaltconcreteunderindirecttensiledeformation
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