Design and characterization of self-sensing steel fiber reinforced concrete

The purpose of this communication is to develop a self-sensing cement composite capable of detecting stress variation in concrete by monitoring its electrical property. The relationship between the electrical properties, i.e. electrical resistance of steel fiber reinforced concrete, and stress under...

Full description

Bibliographic Details
Main Authors: Ferdiansyah Teuku, Turatsinze Anaclet, Balayssac Jean-Paul
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201819911008
id doaj-e8c540151410437eab0ece3e124ad71f
record_format Article
spelling doaj-e8c540151410437eab0ece3e124ad71f2021-02-02T08:42:55ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011991100810.1051/matecconf/201819911008matecconf_iccrrr2018_11008Design and characterization of self-sensing steel fiber reinforced concreteFerdiansyah Teuku0Turatsinze Anaclet1Balayssac Jean-Paul2LMDC, INSA/UPS Génie CivilLMDC, INSA/UPS Génie CivilLMDC, INSA/UPS Génie CivilThe purpose of this communication is to develop a self-sensing cement composite capable of detecting stress variation in concrete by monitoring its electrical property. The relationship between the electrical properties, i.e. electrical resistance of steel fiber reinforced concrete, and stress under loading as part of self-sensing study is presented in here. Amorphous metallic fibers (AMF) with two different lengths i.e. 10 mm and 30 mm are used as concrete reinforcement at a content of 40 kg/m3. A water to cement ratio of 0.39 was adopted for the mix proportions. Natural fine and coarse siliceous aggregates were used for this research. Superplasticizer was used to achieve the target of workability. The two-probe method is used for measuring electrical properties on cylinder specimens with diameter 100 mm and height 200 mm. The influence of different parameters such as fiber length, frequency of power input, maximum stress and variation of potential input on the sensitivity of the sensing are investigated. The results indicate that the electrical resistance of the concrete decreases reversibly during loading and increases reversibly during unloading. Good sensitivity obtained for the mix using 30 mm AMF length indicates that the addition of this type of fiber into concrete can be suitable to produce a self-sensing cement composite.https://doi.org/10.1051/matecconf/201819911008
collection DOAJ
language English
format Article
sources DOAJ
author Ferdiansyah Teuku
Turatsinze Anaclet
Balayssac Jean-Paul
spellingShingle Ferdiansyah Teuku
Turatsinze Anaclet
Balayssac Jean-Paul
Design and characterization of self-sensing steel fiber reinforced concrete
MATEC Web of Conferences
author_facet Ferdiansyah Teuku
Turatsinze Anaclet
Balayssac Jean-Paul
author_sort Ferdiansyah Teuku
title Design and characterization of self-sensing steel fiber reinforced concrete
title_short Design and characterization of self-sensing steel fiber reinforced concrete
title_full Design and characterization of self-sensing steel fiber reinforced concrete
title_fullStr Design and characterization of self-sensing steel fiber reinforced concrete
title_full_unstemmed Design and characterization of self-sensing steel fiber reinforced concrete
title_sort design and characterization of self-sensing steel fiber reinforced concrete
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description The purpose of this communication is to develop a self-sensing cement composite capable of detecting stress variation in concrete by monitoring its electrical property. The relationship between the electrical properties, i.e. electrical resistance of steel fiber reinforced concrete, and stress under loading as part of self-sensing study is presented in here. Amorphous metallic fibers (AMF) with two different lengths i.e. 10 mm and 30 mm are used as concrete reinforcement at a content of 40 kg/m3. A water to cement ratio of 0.39 was adopted for the mix proportions. Natural fine and coarse siliceous aggregates were used for this research. Superplasticizer was used to achieve the target of workability. The two-probe method is used for measuring electrical properties on cylinder specimens with diameter 100 mm and height 200 mm. The influence of different parameters such as fiber length, frequency of power input, maximum stress and variation of potential input on the sensitivity of the sensing are investigated. The results indicate that the electrical resistance of the concrete decreases reversibly during loading and increases reversibly during unloading. Good sensitivity obtained for the mix using 30 mm AMF length indicates that the addition of this type of fiber into concrete can be suitable to produce a self-sensing cement composite.
url https://doi.org/10.1051/matecconf/201819911008
work_keys_str_mv AT ferdiansyahteuku designandcharacterizationofselfsensingsteelfiberreinforcedconcrete
AT turatsinzeanaclet designandcharacterizationofselfsensingsteelfiberreinforcedconcrete
AT balayssacjeanpaul designandcharacterizationofselfsensingsteelfiberreinforcedconcrete
_version_ 1724296620756959232