CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING

Polytetrafluoroethylene(PTFE)has the advantages of high and low temperature resistance,chemical corrosion resistance and high thermal stability,and has become an indispensable sealing material in the industrial field.Its compression performance is crucial to the safe service of the sealing structure...

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Main Authors: WANG JingHui, LI JiKang, LIU Zheng, CHEN Xu
Format: Article
Language:zho
Published: Editorial Office of Journal of Mechanical Strength 2024-08-01
Series:Jixie qiangdu
Subjects:
Online Access:http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2024.04.027
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author WANG JingHui
LI JiKang
LIU Zheng
CHEN Xu
author_facet WANG JingHui
LI JiKang
LIU Zheng
CHEN Xu
author_sort WANG JingHui
collection DOAJ
description Polytetrafluoroethylene(PTFE)has the advantages of high and low temperature resistance,chemical corrosion resistance and high thermal stability,and has become an indispensable sealing material in the industrial field.Its compression performance is crucial to the safe service of the sealing structure.By carrying out the compression experiments and compression creep experiments on PTFE,the compression properties of PTFE at different temperatures were studied,and the coupling effect of stress and temperature on creep behavior was explored.The results show that the compressive yield strength and compressive modulus of PTFE decrease with the increase of temperature.The compression creep performance is influenced by the coupling of temperature and stress.At the same temperature,the instantaneous strain and creep rate of PTFE increase with the increase of stress.Under the same stress,as the temperature increases,the compressive modulus decreases,the molecular energy and free volume increase,resulting in an increase in the instantaneous strain and creep of PTFE,and an increase in the total strain.Finally,the Burgers model,Findley model,and Time-Hardening model were used to analyze the creep behavior of PTFE under different loading conditions.It was found that the Burgers model and Findley model can better describe the creep behavior of PTFE at different temperatures.This study can provide theoretical guidance and data support for the design and engineering application of sealing structures that consider the compressive creep performance of PTFE.
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institution Kabale University
issn 1001-9669
language zho
publishDate 2024-08-01
publisher Editorial Office of Journal of Mechanical Strength
record_format Article
series Jixie qiangdu
spelling doaj-art-0b325006f23746c3a5827428e2a549362025-01-15T02:46:05ZzhoEditorial Office of Journal of Mechanical StrengthJixie qiangdu1001-96692024-08-014695996879314526CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLINGWANG JingHuiLI JiKangLIU ZhengCHEN XuPolytetrafluoroethylene(PTFE)has the advantages of high and low temperature resistance,chemical corrosion resistance and high thermal stability,and has become an indispensable sealing material in the industrial field.Its compression performance is crucial to the safe service of the sealing structure.By carrying out the compression experiments and compression creep experiments on PTFE,the compression properties of PTFE at different temperatures were studied,and the coupling effect of stress and temperature on creep behavior was explored.The results show that the compressive yield strength and compressive modulus of PTFE decrease with the increase of temperature.The compression creep performance is influenced by the coupling of temperature and stress.At the same temperature,the instantaneous strain and creep rate of PTFE increase with the increase of stress.Under the same stress,as the temperature increases,the compressive modulus decreases,the molecular energy and free volume increase,resulting in an increase in the instantaneous strain and creep of PTFE,and an increase in the total strain.Finally,the Burgers model,Findley model,and Time-Hardening model were used to analyze the creep behavior of PTFE under different loading conditions.It was found that the Burgers model and Findley model can better describe the creep behavior of PTFE at different temperatures.This study can provide theoretical guidance and data support for the design and engineering application of sealing structures that consider the compressive creep performance of PTFE.http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2024.04.027PolytetrafluoroethyleneCompression creep testTemperature-stress couplingConstitutive model
spellingShingle WANG JingHui
LI JiKang
LIU Zheng
CHEN Xu
CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
Jixie qiangdu
Polytetrafluoroethylene
Compression creep test
Temperature-stress coupling
Constitutive model
title CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
title_full CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
title_fullStr CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
title_full_unstemmed CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
title_short CREEP BEHAVIOR AND CONSTITUTIVE DESCRIPTION OF POLYTETRAFLUOROETHYLENE UNDER TEMPERATURE-STRESS COUPLING
title_sort creep behavior and constitutive description of polytetrafluoroethylene under temperature stress coupling
topic Polytetrafluoroethylene
Compression creep test
Temperature-stress coupling
Constitutive model
url http://www.jxqd.net.cn/thesisDetails#10.16579/j.issn.1001.9669.2024.04.027
work_keys_str_mv AT wangjinghui creepbehaviorandconstitutivedescriptionofpolytetrafluoroethyleneundertemperaturestresscoupling
AT lijikang creepbehaviorandconstitutivedescriptionofpolytetrafluoroethyleneundertemperaturestresscoupling
AT liuzheng creepbehaviorandconstitutivedescriptionofpolytetrafluoroethyleneundertemperaturestresscoupling
AT chenxu creepbehaviorandconstitutivedescriptionofpolytetrafluoroethyleneundertemperaturestresscoupling