Fatigue crack propagation of PVC-U and PVC-M in water environment

The addition of impact modifiers such as CPE enhance the fracture toughness to PVC to the extent that higher design stresses can be applied to PVC-M pipes compared to PVC-U. However, the fatigue response of PVC-M and PVC-U has been reported to be ostensibly the same. In this work, the fatigue crack...

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Main Authors: Whittle, Alan, Samat, Noorasikin, Hoffman, Mark, Burford, Robert
Format: Proceeding Paper
Language:English
Published: 2008
Subjects:
Online Access:http://irep.iium.edu.my/2983/1/plastic_pipe.pdf
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author Whittle, Alan
Samat, Noorasikin
Hoffman, Mark
Burford, Robert
author_facet Whittle, Alan
Samat, Noorasikin
Hoffman, Mark
Burford, Robert
author_sort Whittle, Alan
collection IIUM
description The addition of impact modifiers such as CPE enhance the fracture toughness to PVC to the extent that higher design stresses can be applied to PVC-M pipes compared to PVC-U. However, the fatigue response of PVC-M and PVC-U has been reported to be ostensibly the same. In this work, the fatigue crack growth mechanism has been investigated to determine why enhancement of the toughness by the impact modifier does not simultaneously increase the fatigue resistance. It was shown that both PVC-U and PVC-M exhibit a fatigue threshold. For PVC-M the threshold was more sensitive to the testing environment than was PVC-U. The fatigue crack growth rate for both materials was shown to be lower in water than in air, especially at low stress intensity factor amplitudes. Hypotheses are given for the similarities and differences between the fatigue crack growth rates of PVC-U and PVC-M and why the performance is better in water than in air.
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spelling oai:generic.eprints.org:29832011-10-19T08:08:07Z http://irep.iium.edu.my/2983/ Fatigue crack propagation of PVC-U and PVC-M in water environment Whittle, Alan Samat, Noorasikin Hoffman, Mark Burford, Robert TP1080 Polymers, plastics and their manufacture The addition of impact modifiers such as CPE enhance the fracture toughness to PVC to the extent that higher design stresses can be applied to PVC-M pipes compared to PVC-U. However, the fatigue response of PVC-M and PVC-U has been reported to be ostensibly the same. In this work, the fatigue crack growth mechanism has been investigated to determine why enhancement of the toughness by the impact modifier does not simultaneously increase the fatigue resistance. It was shown that both PVC-U and PVC-M exhibit a fatigue threshold. For PVC-M the threshold was more sensitive to the testing environment than was PVC-U. The fatigue crack growth rate for both materials was shown to be lower in water than in air, especially at low stress intensity factor amplitudes. Hypotheses are given for the similarities and differences between the fatigue crack growth rates of PVC-U and PVC-M and why the performance is better in water than in air. 2008 Proceeding Paper NonPeerReviewed application/pdf en http://irep.iium.edu.my/2983/1/plastic_pipe.pdf Whittle, Alan and Samat, Noorasikin and Hoffman, Mark and Burford, Robert (2008) Fatigue crack propagation of PVC-U and PVC-M in water environment. In: Plastic Pipes XIV Conference, 22 - 24 September 2008, Budapest, Hungary. (Unpublished) http://www.ppxiv.com/
spellingShingle TP1080 Polymers, plastics and their manufacture
Whittle, Alan
Samat, Noorasikin
Hoffman, Mark
Burford, Robert
Fatigue crack propagation of PVC-U and PVC-M in water environment
title Fatigue crack propagation of PVC-U and PVC-M in water environment
title_full Fatigue crack propagation of PVC-U and PVC-M in water environment
title_fullStr Fatigue crack propagation of PVC-U and PVC-M in water environment
title_full_unstemmed Fatigue crack propagation of PVC-U and PVC-M in water environment
title_short Fatigue crack propagation of PVC-U and PVC-M in water environment
title_sort fatigue crack propagation of pvc u and pvc m in water environment
topic TP1080 Polymers, plastics and their manufacture
url http://irep.iium.edu.my/2983/1/plastic_pipe.pdf
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AT samatnoorasikin fatiguecrackpropagationofpvcuandpvcminwaterenvironment
AT hoffmanmark fatiguecrackpropagationofpvcuandpvcminwaterenvironment
AT burfordrobert fatiguecrackpropagationofpvcuandpvcminwaterenvironment