Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber

Via cyclic loading and unloading tests of natural/styrene-butadiene rubber (NSBR) blends at room temperature, the effects of the stretching, rate, temperature, and volume fraction of carbon black in the filled rubber on a permanent set (residual strain) were studied. The results showed that increasi...

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Main Authors: LiHong Huang, Xiaoxiang Yang, Jianhong Gao
Format: Article
Language:English
Published: Hindawi-Wiley 2019-01-01
Series:Advances in Polymer Technology
Online Access:http://dx.doi.org/10.1155/2019/2369329
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spelling doaj-84404cb011c849c69f46a362b2d8dc642020-11-24T20:55:57ZengHindawi-WileyAdvances in Polymer Technology0730-66791098-23292019-01-01201910.1155/2019/23693292369329Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled RubberLiHong Huang0Xiaoxiang Yang1Jianhong Gao2College of Chemical Engineering, Fuzhou University, Fuzhou, Fujian 350108, ChinaCollege of Chemical Engineering, Fuzhou University, Fuzhou, Fujian 350108, ChinaCollege of Chemical Engineering, Fuzhou University, Fuzhou, Fujian 350108, ChinaVia cyclic loading and unloading tests of natural/styrene-butadiene rubber (NSBR) blends at room temperature, the effects of the stretching, rate, temperature, and volume fraction of carbon black in the filled rubber on a permanent set (residual strain) were studied. The results showed that increasing the stretching, rate, and volume fraction of carbon black and reducing the temperature yielded greater residual strain. The uniaxial tensile behaviors of composites with the Mullins effect and residual strain were simulated using the ABAQUS software according to the aforementioned data. An Ogden-type constitutive model was derived, and the theory of pseudo-elasticity proposed by Ogden and Roxburgh was used in the model. It was found that the theory of pseudo-elasticity and the Ogden constitutive model are applicable to this composite, and if combined with plastic deformation, the models are more accurate for calculating the residual strain after unloading.http://dx.doi.org/10.1155/2019/2369329
collection DOAJ
language English
format Article
sources DOAJ
author LiHong Huang
Xiaoxiang Yang
Jianhong Gao
spellingShingle LiHong Huang
Xiaoxiang Yang
Jianhong Gao
Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
Advances in Polymer Technology
author_facet LiHong Huang
Xiaoxiang Yang
Jianhong Gao
author_sort LiHong Huang
title Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
title_short Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
title_full Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
title_fullStr Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
title_full_unstemmed Pseudo-Elastic Analysis with Permanent Set in Carbon-Filled Rubber
title_sort pseudo-elastic analysis with permanent set in carbon-filled rubber
publisher Hindawi-Wiley
series Advances in Polymer Technology
issn 0730-6679
1098-2329
publishDate 2019-01-01
description Via cyclic loading and unloading tests of natural/styrene-butadiene rubber (NSBR) blends at room temperature, the effects of the stretching, rate, temperature, and volume fraction of carbon black in the filled rubber on a permanent set (residual strain) were studied. The results showed that increasing the stretching, rate, and volume fraction of carbon black and reducing the temperature yielded greater residual strain. The uniaxial tensile behaviors of composites with the Mullins effect and residual strain were simulated using the ABAQUS software according to the aforementioned data. An Ogden-type constitutive model was derived, and the theory of pseudo-elasticity proposed by Ogden and Roxburgh was used in the model. It was found that the theory of pseudo-elasticity and the Ogden constitutive model are applicable to this composite, and if combined with plastic deformation, the models are more accurate for calculating the residual strain after unloading.
url http://dx.doi.org/10.1155/2019/2369329
work_keys_str_mv AT lihonghuang pseudoelasticanalysiswithpermanentsetincarbonfilledrubber
AT xiaoxiangyang pseudoelasticanalysiswithpermanentsetincarbonfilledrubber
AT jianhonggao pseudoelasticanalysiswithpermanentsetincarbonfilledrubber
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