The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy

Fiber reinforced composite materials are widely used in automotive industries and aviations due to their special characteristics such as high strength to weight ratio. As the fiber reinforced composites are used as structural materials, they are sometimes used in more complex environments such as in...

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Main Author: Mohd Badruddin bin Karim, Mohd Badruddin
Format: Final Year Project
Language:English
Published: Universiti Teknologi Petronas 2009
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Online Access:http://utpedia.utp.edu.my/712/1/final_report_complete.pdf
http://utpedia.utp.edu.my/712/
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Institution: Universiti Teknologi Petronas
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spelling my-utp-utpedia.7122017-01-25T09:44:30Z http://utpedia.utp.edu.my/712/ The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy Mohd Badruddin bin Karim, Mohd Badruddin TJ Mechanical engineering and machinery Fiber reinforced composite materials are widely used in automotive industries and aviations due to their special characteristics such as high strength to weight ratio. As the fiber reinforced composites are used as structural materials, they are sometimes used in more complex environments such as in high temperature application. Under thermal aging condition, thermal stresses may develop in composite laminates due to the difference in the coefficient of thermal expansion of the fibers and the matrix. This environment is known to cause degradation of composite materials. For this reason, an experiment is done to investigate the effect of thermal aging to the impact characteristics of the structures. In this study, two different types of glass fiber reinforced epoxy with varied fiber orientation are studied after being impacted by a standard drop weight with 10-J impact energy. Thermal aging is performed by exposing the sample to the temperature of 1000C for 50 hours. The damage zone are studied by using ultrasonic non-destructive inspection. The impact resistance of both form of fibers are declined when subjected to thermal aging. The damage area produced is larger and it shows that extreme temperature greatly affect the structural intergrity of the structures. Thick woven glass reinforced composite shows the best structural behavior with minimal damage area. Thin chopped glass fiber reinforced composite has the lowest impact resistance among the others which produce the largest damage area. The test revealed the woven glass fiber are more ductile than the chopped glass fiber. Universiti Teknologi Petronas 2009 Final Year Project NonPeerReviewed application/pdf en http://utpedia.utp.edu.my/712/1/final_report_complete.pdf Mohd Badruddin bin Karim, Mohd Badruddin (2009) The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy. Universiti Teknologi Petronas, Sri Iskandar,Tronoh,Perak. (Unpublished)
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Electronic and Digitized Intellectual Asset
url_provider http://utpedia.utp.edu.my/
language English
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Mohd Badruddin bin Karim, Mohd Badruddin
The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
description Fiber reinforced composite materials are widely used in automotive industries and aviations due to their special characteristics such as high strength to weight ratio. As the fiber reinforced composites are used as structural materials, they are sometimes used in more complex environments such as in high temperature application. Under thermal aging condition, thermal stresses may develop in composite laminates due to the difference in the coefficient of thermal expansion of the fibers and the matrix. This environment is known to cause degradation of composite materials. For this reason, an experiment is done to investigate the effect of thermal aging to the impact characteristics of the structures. In this study, two different types of glass fiber reinforced epoxy with varied fiber orientation are studied after being impacted by a standard drop weight with 10-J impact energy. Thermal aging is performed by exposing the sample to the temperature of 1000C for 50 hours. The damage zone are studied by using ultrasonic non-destructive inspection. The impact resistance of both form of fibers are declined when subjected to thermal aging. The damage area produced is larger and it shows that extreme temperature greatly affect the structural intergrity of the structures. Thick woven glass reinforced composite shows the best structural behavior with minimal damage area. Thin chopped glass fiber reinforced composite has the lowest impact resistance among the others which produce the largest damage area. The test revealed the woven glass fiber are more ductile than the chopped glass fiber.
format Final Year Project
author Mohd Badruddin bin Karim, Mohd Badruddin
author_facet Mohd Badruddin bin Karim, Mohd Badruddin
author_sort Mohd Badruddin bin Karim, Mohd Badruddin
title The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
title_short The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
title_full The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
title_fullStr The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
title_full_unstemmed The Effect of Thermal Aging to The Impact Properties of Glasss Fiber Reinforced Epoxy
title_sort effect of thermal aging to the impact properties of glasss fiber reinforced epoxy
publisher Universiti Teknologi Petronas
publishDate 2009
url http://utpedia.utp.edu.my/712/1/final_report_complete.pdf
http://utpedia.utp.edu.my/712/
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