Determining Deformation Transition in Polyethylene under Tensile Loading
The multi-relaxation (MR) test was developed based on the concept that stress relaxation behavior can be used to reflect the material state of polyethylene (PE) under tension. On the basis of this concept, critical stroke for the onset of plastic deformation in the crystalline phase, named the first...
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doaj-429f67922271455ea7cc4c3c5a6034d22020-11-25T02:43:27ZengMDPI AGPolymers2073-43602019-08-01119141510.3390/polym11091415polym11091415Determining Deformation Transition in Polyethylene under Tensile LoadingNa Tan0P.-Y. Ben Jar1Department of Mechanical Engineering, University of Alberta, 10-203 Donadeo Innovation Centre for Engineering, 9211-116 Street NW, Edmonton, AB T6G 1H9, CanadaDepartment of Mechanical Engineering, University of Alberta, 10-203 Donadeo Innovation Centre for Engineering, 9211-116 Street NW, Edmonton, AB T6G 1H9, CanadaThe multi-relaxation (MR) test was developed based on the concept that stress relaxation behavior can be used to reflect the material state of polyethylene (PE) under tension. On the basis of this concept, critical stroke for the onset of plastic deformation in the crystalline phase, named the first critical stroke, was determined using the MR test. Results from wide angle X-ray scattering suggest that phase transformation occurred in the crystalline phase of PE after the specimen was stretched beyond the first critical stroke. In this work, the MR test was applied to six PEs of different mass densities to determine their first critical strokes and the corresponding total and quasi-static (QS) stress values. The results show that the first critical stroke had very similar values among the six PEs. More interestingly, the ratio of the QS stress at the first critical stroke to the yield stress from the standard tensile test showed little dependence on PE density. Therefore, it was possible to use the popular short-term tensile test to characterize the critical QS component of the applied stress to initiate plastic deformation in the crystalline phase, which is expected to play a significant role on the long-term, load-carrying applications of PE.https://www.mdpi.com/2073-4360/11/9/1415multi-relaxation testdeformation transitionpolyethylenedensityWAXS |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Na Tan P.-Y. Ben Jar |
spellingShingle |
Na Tan P.-Y. Ben Jar Determining Deformation Transition in Polyethylene under Tensile Loading Polymers multi-relaxation test deformation transition polyethylene density WAXS |
author_facet |
Na Tan P.-Y. Ben Jar |
author_sort |
Na Tan |
title |
Determining Deformation Transition in Polyethylene under Tensile Loading |
title_short |
Determining Deformation Transition in Polyethylene under Tensile Loading |
title_full |
Determining Deformation Transition in Polyethylene under Tensile Loading |
title_fullStr |
Determining Deformation Transition in Polyethylene under Tensile Loading |
title_full_unstemmed |
Determining Deformation Transition in Polyethylene under Tensile Loading |
title_sort |
determining deformation transition in polyethylene under tensile loading |
publisher |
MDPI AG |
series |
Polymers |
issn |
2073-4360 |
publishDate |
2019-08-01 |
description |
The multi-relaxation (MR) test was developed based on the concept that stress relaxation behavior can be used to reflect the material state of polyethylene (PE) under tension. On the basis of this concept, critical stroke for the onset of plastic deformation in the crystalline phase, named the first critical stroke, was determined using the MR test. Results from wide angle X-ray scattering suggest that phase transformation occurred in the crystalline phase of PE after the specimen was stretched beyond the first critical stroke. In this work, the MR test was applied to six PEs of different mass densities to determine their first critical strokes and the corresponding total and quasi-static (QS) stress values. The results show that the first critical stroke had very similar values among the six PEs. More interestingly, the ratio of the QS stress at the first critical stroke to the yield stress from the standard tensile test showed little dependence on PE density. Therefore, it was possible to use the popular short-term tensile test to characterize the critical QS component of the applied stress to initiate plastic deformation in the crystalline phase, which is expected to play a significant role on the long-term, load-carrying applications of PE. |
topic |
multi-relaxation test deformation transition polyethylene density WAXS |
url |
https://www.mdpi.com/2073-4360/11/9/1415 |
work_keys_str_mv |
AT natan determiningdeformationtransitioninpolyethyleneundertensileloading AT pybenjar determiningdeformationtransitioninpolyethyleneundertensileloading |
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