Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds

Indiana University-Purdue University Indianapolis (IUPUI) === This study represents a cost-effective method to advance the physical and mechanical properties of carbon fiber-reinforced polymer (CFRP) prepreg composite materials, where electrospun multiwalled carbon nanotubes (CNTs)/epoxy nanofibers...

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Main Author: Wable, Vidya Balu
Other Authors: Dalir, Hamid
Language:en
Published: 2021
Subjects:
Online Access:http://hdl.handle.net/1805/25960
http://dx.doi.org/10.7912/C2/14
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spelling ndltd-IUPUI-oai-scholarworks.iupui.edu-1805-259602021-05-20T05:10:21Z Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds Wable, Vidya Balu Dalir, Hamid Agarwal, Mangilal Tovar, Andres Electrospinning Aligned CNT/epoxy nanofibers Nanofiber scaffolds Mechanical/ thermal /electrical properties Enhanced CFRP composites Indiana University-Purdue University Indianapolis (IUPUI) This study represents a cost-effective method to advance the physical and mechanical properties of carbon fiber-reinforced polymer (CFRP) prepreg composite materials, where electrospun multiwalled carbon nanotubes (CNTs)/epoxy nanofibers fabricated and deposited in between the layers of traditional CFRP prepreg composite. CNT-aligned epoxy nanofibers were uniformly formed by an optimized electrospinning method. Electrospinning is considered one of the most flexible, low-cost, and globally recognized methods for generating continuous filaments from submicron to tens of nanometer diameter. Nanofilaments were incorporated precisely on the layers of prepreg to accomplish increased adhesion and interfacial bonding, leading to increased strength and enhancements in more mechanical properties. As a result, the modulus of the epoxy and CNT/epoxy nanofibers were revealed to be 3.24 GPa and 4.84 GPa, leading to 49% enhancement. Furthermore, interlaminar shear strength (ILSS) and fatigue performance at high-stress regimes improved by 29% and 27%, respectively. Barely visible impact damage (BVID) energy improved considerably by up to 45%. The thermal and electrical conductivities were also increased considerably because of the highly conductive CNT networks present in between the CFRP layers. The newly introduced approach was able to deposit high content uniform CNTs at the ply interface of prepregs to enhance the CFRP properties, that has not been achieved in the past because of the randomly oriented high viscosity CNTs in epoxy resins. 2021-05-18T12:34:56Z 2021-05-18T12:34:56Z 2021-05 Thesis http://hdl.handle.net/1805/25960 http://dx.doi.org/10.7912/C2/14 en Attribution 4.0 International http://creativecommons.org/licenses/by/4.0/
collection NDLTD
language en
sources NDLTD
topic Electrospinning
Aligned CNT/epoxy nanofibers
Nanofiber scaffolds
Mechanical/ thermal /electrical properties
Enhanced CFRP composites
spellingShingle Electrospinning
Aligned CNT/epoxy nanofibers
Nanofiber scaffolds
Mechanical/ thermal /electrical properties
Enhanced CFRP composites
Wable, Vidya Balu
Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
description Indiana University-Purdue University Indianapolis (IUPUI) === This study represents a cost-effective method to advance the physical and mechanical properties of carbon fiber-reinforced polymer (CFRP) prepreg composite materials, where electrospun multiwalled carbon nanotubes (CNTs)/epoxy nanofibers fabricated and deposited in between the layers of traditional CFRP prepreg composite. CNT-aligned epoxy nanofibers were uniformly formed by an optimized electrospinning method. Electrospinning is considered one of the most flexible, low-cost, and globally recognized methods for generating continuous filaments from submicron to tens of nanometer diameter. Nanofilaments were incorporated precisely on the layers of prepreg to accomplish increased adhesion and interfacial bonding, leading to increased strength and enhancements in more mechanical properties. As a result, the modulus of the epoxy and CNT/epoxy nanofibers were revealed to be 3.24 GPa and 4.84 GPa, leading to 49% enhancement. Furthermore, interlaminar shear strength (ILSS) and fatigue performance at high-stress regimes improved by 29% and 27%, respectively. Barely visible impact damage (BVID) energy improved considerably by up to 45%. The thermal and electrical conductivities were also increased considerably because of the highly conductive CNT networks present in between the CFRP layers. The newly introduced approach was able to deposit high content uniform CNTs at the ply interface of prepregs to enhance the CFRP properties, that has not been achieved in the past because of the randomly oriented high viscosity CNTs in epoxy resins.
author2 Dalir, Hamid
author_facet Dalir, Hamid
Wable, Vidya Balu
author Wable, Vidya Balu
author_sort Wable, Vidya Balu
title Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
title_short Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
title_full Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
title_fullStr Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
title_full_unstemmed Interfacial Toughening Of Carbon Fiber Reinforced Polymer (CFRP) Matrix Composites Using MWCNTs/Epoxy Nanofiber Scaffolds
title_sort interfacial toughening of carbon fiber reinforced polymer (cfrp) matrix composites using mwcnts/epoxy nanofiber scaffolds
publishDate 2021
url http://hdl.handle.net/1805/25960
http://dx.doi.org/10.7912/C2/14
work_keys_str_mv AT wablevidyabalu interfacialtougheningofcarbonfiberreinforcedpolymercfrpmatrixcompositesusingmwcntsepoxynanofiberscaffolds
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