Self-Monitoring Strengthening System Based on Carbon Fiber Laminate

Externally bonded composites reinforced with high-strength fibers are increasingly popular in construction, especially in structures’ strengthening, where the best possible mechanical properties are required. At the same time the ability to autodetect threats is one of the most desirable features of...

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Veröffentlicht in:Journal of sensors 2016-01, Vol.2016 (2016), p.1-8
Hauptverfasser: Castro Gomes, Joao, Szojda, Leszek, Dawczynski, Szymon, Gorski, Marcin, Krzywon, Rafal, Salvado, Rita
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container_end_page 8
container_issue 2016
container_start_page 1
container_title Journal of sensors
container_volume 2016
creator Castro Gomes, Joao
Szojda, Leszek
Dawczynski, Szymon
Gorski, Marcin
Krzywon, Rafal
Salvado, Rita
description Externally bonded composites reinforced with high-strength fibers are increasingly popular in construction, especially in structures’ strengthening, where the best possible mechanical properties are required. At the same time the ability to autodetect threats is one of the most desirable features of contemporary structures. The authors of the paper have developed an intelligent fabric, wherein the carbon fibers play the role of not only tensile reinforcement but also strain sensor. The idea is based on the construction of the strain gauge, where the thread of carbon fibers arranged in zig-zag pattern works as electrical conductor and is insulated by parallel thread of glass or acrylic fibers. Preliminary laboratory tests were designed to create effective measurement techniques and assess the effectiveness of the strengthening of selected building structures, as reinforced concrete and timber beams. Presented in the paper, selected results of these studies are very promising, although there were some noted problems to be considered in next steps. The main problem here is the control of the cross section of the fibers tow, affecting the total resistance of the fabric. One of the main deficiencies of the proposed solution is also sensitivity to moisture.
doi_str_mv 10.1155/2016/3947513
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source Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals; Wiley-Blackwell Open Access Titles; Alma/SFX Local Collection
subjects Carbon fibers
Construction
Deformation
Fabrics
Fibers
Glass
Laboratories
Measurement techniques
Mechanical properties
Recording equipment
Reinforcement
Researchers
Sensors
Strain gauges
Strengthening
title Self-Monitoring Strengthening System Based on Carbon Fiber Laminate
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