Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers

In this work, we report the potential use of novel carbon nanofibers (CNFs), dispersed during fabrication of glass fiber composites to monitor damage propagation under static loading. The use of CNFs enables a transformation of the typically non-conductive glass fiber composites into new fiber compo...

Full description

Bibliographic Details
Main Authors: Ahmed Al-Sabagh, Eman Taha, Usama Kandil, Gamal-Abdelnaser Nasr, Mahmoud Reda Taha
Format: Article
Language:English
Published: MDPI AG 2016-09-01
Series:Nanomaterials
Subjects:
Online Access:http://www.mdpi.com/2079-4991/6/9/169
id doaj-e348f38230e94b0b8d7870463e91c680
record_format Article
spelling doaj-e348f38230e94b0b8d7870463e91c6802020-11-24T21:13:31ZengMDPI AGNanomaterials2079-49912016-09-016916910.3390/nano6090169nano6090169Monitoring Damage Propagation in Glass Fiber Composites Using Carbon NanofibersAhmed Al-Sabagh0Eman Taha1Usama Kandil2Gamal-Abdelnaser Nasr3Mahmoud Reda Taha4Egyptian Petroleum Research Institute, Nasr City, Cairo 11727, EgyptEgyptian Petroleum Research Institute, Nasr City, Cairo 11727, EgyptEgyptian Petroleum Research Institute, Nasr City, Cairo 11727, EgyptDepartment of Physics, Faculty of Science, Cairo University, Giza 12613, EgyptDepartment of Civil Engineering, University of New Mexico, Albuquerque, NM 87131, USAIn this work, we report the potential use of novel carbon nanofibers (CNFs), dispersed during fabrication of glass fiber composites to monitor damage propagation under static loading. The use of CNFs enables a transformation of the typically non-conductive glass fiber composites into new fiber composites with appreciable electrical conductivity. The percolation limit of CNFs/epoxy nanocomposites was first quantified. The electromechanical responses of glass fiber composites fabricated using CNFs/epoxy nanocomposite were examined under static tension loads. The experimental observations showed a nonlinear change of electrical conductivity of glass fiber composites incorporating CNFs versus the stress level under static load. Microstructural investigations proved the ability of CNFs to alter the polymer matrix and to produce a new polymer nanocomposite with a connected nanofiber network with improved electrical properties and different mechanical properties compared with the neat epoxy. It is concluded that incorporating CNFs during fabrication of glass fiber composites can provide an innovative means of self-sensing that will allow damage propagation to be monitored in glass fiber composites.http://www.mdpi.com/2079-4991/6/9/169carbon nanofibersglass fiber compositesself-sensingdamage monitoring
collection DOAJ
language English
format Article
sources DOAJ
author Ahmed Al-Sabagh
Eman Taha
Usama Kandil
Gamal-Abdelnaser Nasr
Mahmoud Reda Taha
spellingShingle Ahmed Al-Sabagh
Eman Taha
Usama Kandil
Gamal-Abdelnaser Nasr
Mahmoud Reda Taha
Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
Nanomaterials
carbon nanofibers
glass fiber composites
self-sensing
damage monitoring
author_facet Ahmed Al-Sabagh
Eman Taha
Usama Kandil
Gamal-Abdelnaser Nasr
Mahmoud Reda Taha
author_sort Ahmed Al-Sabagh
title Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
title_short Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
title_full Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
title_fullStr Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
title_full_unstemmed Monitoring Damage Propagation in Glass Fiber Composites Using Carbon Nanofibers
title_sort monitoring damage propagation in glass fiber composites using carbon nanofibers
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2016-09-01
description In this work, we report the potential use of novel carbon nanofibers (CNFs), dispersed during fabrication of glass fiber composites to monitor damage propagation under static loading. The use of CNFs enables a transformation of the typically non-conductive glass fiber composites into new fiber composites with appreciable electrical conductivity. The percolation limit of CNFs/epoxy nanocomposites was first quantified. The electromechanical responses of glass fiber composites fabricated using CNFs/epoxy nanocomposite were examined under static tension loads. The experimental observations showed a nonlinear change of electrical conductivity of glass fiber composites incorporating CNFs versus the stress level under static load. Microstructural investigations proved the ability of CNFs to alter the polymer matrix and to produce a new polymer nanocomposite with a connected nanofiber network with improved electrical properties and different mechanical properties compared with the neat epoxy. It is concluded that incorporating CNFs during fabrication of glass fiber composites can provide an innovative means of self-sensing that will allow damage propagation to be monitored in glass fiber composites.
topic carbon nanofibers
glass fiber composites
self-sensing
damage monitoring
url http://www.mdpi.com/2079-4991/6/9/169
work_keys_str_mv AT ahmedalsabagh monitoringdamagepropagationinglassfibercompositesusingcarbonnanofibers
AT emantaha monitoringdamagepropagationinglassfibercompositesusingcarbonnanofibers
AT usamakandil monitoringdamagepropagationinglassfibercompositesusingcarbonnanofibers
AT gamalabdelnasernasr monitoringdamagepropagationinglassfibercompositesusingcarbonnanofibers
AT mahmoudredataha monitoringdamagepropagationinglassfibercompositesusingcarbonnanofibers
_version_ 1716748927806472192