An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer

Based on micro morphology, a thermo-mechanical coupling model of shape memory graphene oxide/epoxy resin (SMGO/EP) was proposed. The heat transfer capability, mechanical property and shape memory ability of shape memory polymer (SMP) were further investigated. The reliability of the modeling was ver...

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Main Authors: Chen Long, Yang Qingbao, Yang Xue, Liu Zhanqiang, Song Qinghua
Format: Article
Language:English
Published: De Gruyter 2022-06-01
Series:Nanotechnology Reviews
Subjects:
Online Access:https://doi.org/10.1515/ntrev-2022-0133
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author Chen Long
Yang Qingbao
Yang Xue
Liu Zhanqiang
Song Qinghua
author_facet Chen Long
Yang Qingbao
Yang Xue
Liu Zhanqiang
Song Qinghua
author_sort Chen Long
collection DOAJ
description Based on micro morphology, a thermo-mechanical coupling model of shape memory graphene oxide/epoxy resin (SMGO/EP) was proposed. The heat transfer capability, mechanical property and shape memory ability of shape memory polymer (SMP) were further investigated. The reliability of the modeling was verified by comparing the heat transfer and shape fixation rate of the experimental and simulation data. The results showed that the maximum error of heat transfer was 6.04%, and shape fixing rate error was 2.33%. When the volume fraction of GO was 1.50 vol%, the maximum stress can reach 158.39 MPa, 46.52% higher than that of pure shape memory EP. With the increase in the volume fraction of GO in the SMGO/EP composites, the heat transfer enhancement and recovery rate of SMGO/EP were directly affected by the doping content of GO. The surface temperature of the composites with GO doping content of 1.50 vol% was 20.26°C higher than that of pure SMEP after heating for 300 s. Under the coupling effect of heat transfer and stress characteristics, the mechanism of shape memory effect of SMGO/EP composites was revealed. The thermo-mechanical coupling modeling of SMGO/EP can effectively predict the shape memory characteristics of the SMGO/EP composites.
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spelling doaj.art-9d09d58a61cc448199d5bfc89ef126f82022-12-22T04:28:55ZengDe GruyterNanotechnology Reviews2191-90972022-06-011112349236510.1515/ntrev-2022-0133An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymerChen Long0Yang Qingbao1Yang Xue2Liu Zhanqiang3Song Qinghua4School of Mechanical Engineering, Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE, Shandong University, Jinan, ChinaSchool of Mechanical Engineering, Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE, Shandong University, Jinan, ChinaSchool of Mechanical Engineering, Jilin Province Electric Power Research Institute Co., Ltd, Changchun, ChinaSchool of Mechanical Engineering, Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE, Shandong University, Jinan, ChinaSchool of Mechanical Engineering, Key Laboratory of High Efficiency and Clean Mechanical Manufacture of MOE, Shandong University, Jinan, ChinaBased on micro morphology, a thermo-mechanical coupling model of shape memory graphene oxide/epoxy resin (SMGO/EP) was proposed. The heat transfer capability, mechanical property and shape memory ability of shape memory polymer (SMP) were further investigated. The reliability of the modeling was verified by comparing the heat transfer and shape fixation rate of the experimental and simulation data. The results showed that the maximum error of heat transfer was 6.04%, and shape fixing rate error was 2.33%. When the volume fraction of GO was 1.50 vol%, the maximum stress can reach 158.39 MPa, 46.52% higher than that of pure shape memory EP. With the increase in the volume fraction of GO in the SMGO/EP composites, the heat transfer enhancement and recovery rate of SMGO/EP were directly affected by the doping content of GO. The surface temperature of the composites with GO doping content of 1.50 vol% was 20.26°C higher than that of pure SMEP after heating for 300 s. Under the coupling effect of heat transfer and stress characteristics, the mechanism of shape memory effect of SMGO/EP composites was revealed. The thermo-mechanical coupling modeling of SMGO/EP can effectively predict the shape memory characteristics of the SMGO/EP composites.https://doi.org/10.1515/ntrev-2022-0133graphene oxidethermo-mechanicalheat conductionmicrostructuresshape memory
spellingShingle Chen Long
Yang Qingbao
Yang Xue
Liu Zhanqiang
Song Qinghua
An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
Nanotechnology Reviews
graphene oxide
thermo-mechanical
heat conduction
microstructures
shape memory
title An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
title_full An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
title_fullStr An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
title_full_unstemmed An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
title_short An investigation on thermo-mechanical performance of graphene-oxide-reinforced shape memory polymer
title_sort investigation on thermo mechanical performance of graphene oxide reinforced shape memory polymer
topic graphene oxide
thermo-mechanical
heat conduction
microstructures
shape memory
url https://doi.org/10.1515/ntrev-2022-0133
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