Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials

In this study, structural damping and toughness characteristics of epoxy-based nanocomposite containing four different mechanisms of reinforcing investigated. These mechanisms are using multiwall carbon nanotube (MWCNT) as nanofiber, clay as nanolayer, SiO2 as particulate nanofiller, and high impact...

Full description

Bibliographic Details
Main Authors: Rostamiyan Yasser, Mashhadzadeh Amin Hamed, Fereidoon Abdolhossein
Format: Article
Language:English
Published: De Gruyter 2015-05-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2013-0210
_version_ 1818584662326378496
author Rostamiyan Yasser
Mashhadzadeh Amin Hamed
Fereidoon Abdolhossein
author_facet Rostamiyan Yasser
Mashhadzadeh Amin Hamed
Fereidoon Abdolhossein
author_sort Rostamiyan Yasser
collection DOAJ
description In this study, structural damping and toughness characteristics of epoxy-based nanocomposite containing four different mechanisms of reinforcing investigated. These mechanisms are using multiwall carbon nanotube (MWCNT) as nanofiber, clay as nanolayer, SiO2 as particulate nanofiller, and high impact polystyrene (HIPS) for polymeric alloying. The epoxy resin used was diglycidyl ether of bisphenol A (DGEBA) cured by cycloaliphatic polyamine. Natural frequency and damping coefficient are computed from the Stochastic Subspace Identification-Data Driven (SSI-Data) method. These parameters measured by Laser Doppler Vibrometer. In addition, impact resistance of these four types of composites is tested. The test results are compared between different weight percent loading of each reinforcement and also between different mechanisms. Also, morphological properties of DGEBA/CNT, DGEBA/clay, DGEBA/SiO2, and DGEBA/HIPS were studied using scanning electron microscopy (SEM).
first_indexed 2024-12-16T08:24:44Z
format Article
id doaj.art-5b350298dcaf4099b06850d6f0ede599
institution Directory Open Access Journal
issn 0792-1233
2191-0359
language English
last_indexed 2024-12-16T08:24:44Z
publishDate 2015-05-01
publisher De Gruyter
record_format Article
series Science and Engineering of Composite Materials
spelling doaj.art-5b350298dcaf4099b06850d6f0ede5992022-12-21T22:38:01ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592015-05-0122322322910.1515/secm-2013-0210Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materialsRostamiyan Yasser0Mashhadzadeh Amin Hamed1Fereidoon Abdolhossein2Department of Mechanical Engineering, Sari Branch, Islamic Azad University, Sari 48164-194, IranDepartment of Mechanical Engineering, Semnan Branch, Islamic Azad University, Semnan 19111-35131, IranFaculty of Mechanical Engineering, Semnan University, Semnan 19111-35131, IranIn this study, structural damping and toughness characteristics of epoxy-based nanocomposite containing four different mechanisms of reinforcing investigated. These mechanisms are using multiwall carbon nanotube (MWCNT) as nanofiber, clay as nanolayer, SiO2 as particulate nanofiller, and high impact polystyrene (HIPS) for polymeric alloying. The epoxy resin used was diglycidyl ether of bisphenol A (DGEBA) cured by cycloaliphatic polyamine. Natural frequency and damping coefficient are computed from the Stochastic Subspace Identification-Data Driven (SSI-Data) method. These parameters measured by Laser Doppler Vibrometer. In addition, impact resistance of these four types of composites is tested. The test results are compared between different weight percent loading of each reinforcement and also between different mechanisms. Also, morphological properties of DGEBA/CNT, DGEBA/clay, DGEBA/SiO2, and DGEBA/HIPS were studied using scanning electron microscopy (SEM).https://doi.org/10.1515/secm-2013-0210clayepoxymwcntsilicastructural damping
spellingShingle Rostamiyan Yasser
Mashhadzadeh Amin Hamed
Fereidoon Abdolhossein
Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
Science and Engineering of Composite Materials
clay
epoxy
mwcnt
silica
structural damping
title Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
title_full Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
title_fullStr Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
title_full_unstemmed Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
title_short Investigation of damping and toughness properties of epoxy-based nanocomposite using different reinforcement mechanisms: polymeric alloying, nanofiber, nanolayered, and nanoparticulate materials
title_sort investigation of damping and toughness properties of epoxy based nanocomposite using different reinforcement mechanisms polymeric alloying nanofiber nanolayered and nanoparticulate materials
topic clay
epoxy
mwcnt
silica
structural damping
url https://doi.org/10.1515/secm-2013-0210
work_keys_str_mv AT rostamiyanyasser investigationofdampingandtoughnesspropertiesofepoxybasednanocompositeusingdifferentreinforcementmechanismspolymericalloyingnanofibernanolayeredandnanoparticulatematerials
AT mashhadzadehaminhamed investigationofdampingandtoughnesspropertiesofepoxybasednanocompositeusingdifferentreinforcementmechanismspolymericalloyingnanofibernanolayeredandnanoparticulatematerials
AT fereidoonabdolhossein investigationofdampingandtoughnesspropertiesofepoxybasednanocompositeusingdifferentreinforcementmechanismspolymericalloyingnanofibernanolayeredandnanoparticulatematerials