Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens

Abstract This paper examines the effect of a broad range of crosshead speed (0.05 to 100 mm/min) and a small range of temperature (25 °C and 45 °C) on the failure behaviour of high density polyethylene (HDPE) specimens containing a) standard size blunt notch and b) standard size blunt notch plus sma...

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Main Authors: Huanyu Pan, Sheila Devasahayam, Sri Bandyopadhyay
Format: Article
Language:English
Published: Nature Publishing Group 2017-07-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-03884-6
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spelling doaj-59f5cd5f78374ad5a443b002a370c8c72020-12-08T01:26:32ZengNature Publishing GroupScientific Reports2045-23222017-07-017111310.1038/s41598-017-03884-6Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimensHuanyu Pan0Sheila Devasahayam1Sri Bandyopadhyay2School of Materials Science & Engineering, University of New South WalesDepartment of Environmental Sciences, Macquarie UniversitySchool of Materials Science & Engineering, University of New South WalesAbstract This paper examines the effect of a broad range of crosshead speed (0.05 to 100 mm/min) and a small range of temperature (25 °C and 45 °C) on the failure behaviour of high density polyethylene (HDPE) specimens containing a) standard size blunt notch and b) standard size blunt notch plus small sharp crack – all tested in air. It was observed that the yield stress properties showed linear increase with the natural logarithm of strain rate. The stress intensity factors under blunt notch and sharp crack conditions also increased linearly with natural logarithm of the crosshead speed. The results indicate that in the practical temperature range of 25 °C and 45 °C under normal atmosphere and increasing strain rates, HDPE specimens with both blunt notches and sharp cracks possess superior fracture properties. SEM microstructure studies of fracture surfaces showed craze initiation mechanisms at lower strain rate, whilst at higher strain rates there is evidence of dimple patterns absorbing the strain energy and creating plastic deformation. The stress intensity factor and the yield strength were higher at 25 °C compared to those at 45 °Chttps://doi.org/10.1038/s41598-017-03884-6
collection DOAJ
language English
format Article
sources DOAJ
author Huanyu Pan
Sheila Devasahayam
Sri Bandyopadhyay
spellingShingle Huanyu Pan
Sheila Devasahayam
Sri Bandyopadhyay
Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
Scientific Reports
author_facet Huanyu Pan
Sheila Devasahayam
Sri Bandyopadhyay
author_sort Huanyu Pan
title Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
title_short Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
title_full Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
title_fullStr Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
title_full_unstemmed Study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
title_sort study of microstructure and fracture properties of blunt notched and sharp cracked high density polyethylene specimens
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-07-01
description Abstract This paper examines the effect of a broad range of crosshead speed (0.05 to 100 mm/min) and a small range of temperature (25 °C and 45 °C) on the failure behaviour of high density polyethylene (HDPE) specimens containing a) standard size blunt notch and b) standard size blunt notch plus small sharp crack – all tested in air. It was observed that the yield stress properties showed linear increase with the natural logarithm of strain rate. The stress intensity factors under blunt notch and sharp crack conditions also increased linearly with natural logarithm of the crosshead speed. The results indicate that in the practical temperature range of 25 °C and 45 °C under normal atmosphere and increasing strain rates, HDPE specimens with both blunt notches and sharp cracks possess superior fracture properties. SEM microstructure studies of fracture surfaces showed craze initiation mechanisms at lower strain rate, whilst at higher strain rates there is evidence of dimple patterns absorbing the strain energy and creating plastic deformation. The stress intensity factor and the yield strength were higher at 25 °C compared to those at 45 °C
url https://doi.org/10.1038/s41598-017-03884-6
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