Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP

The carbon-fiber-reinforced polymer (CFRP) is a mainstream material for lightweight products from the end of the 20th century to the present day. Its compression molding process has obvious advantages in mass production. This paper attempts to establish the constitutive models of compression molding...

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Main Authors: Jiuming Xie, Shiyu Wang, Zhongbao Cui, Jin Wu, Xuejun Zhou
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/10/2277
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spelling doaj-18ea1d2cc29f4021918378270bcb6daf2020-11-25T02:20:13ZengMDPI AGMaterials1996-19442020-05-01132277227710.3390/ma13102277Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRPJiuming Xie0Shiyu Wang1Zhongbao Cui2Jin Wu3Xuejun Zhou4School of Mechanical Engineering, Tianjin University, Tianjin 300350, ChinaSchool of Mechanical Engineering, Tianjin University, Tianjin 300350, ChinaTianjin Sinotech Industry Co., Ltd., Tianjin 300350, ChinaSchool of Mechanical Engineering, Tianjin Sino-Germen University of Applied Sciences, Tianjin 300350, ChinaSchool of Mechanical Engineering, Tianjin Sino-Germen University of Applied Sciences, Tianjin 300350, ChinaThe carbon-fiber-reinforced polymer (CFRP) is a mainstream material for lightweight products from the end of the 20th century to the present day. Its compression molding process has obvious advantages in mass production. This paper attempts to establish the constitutive models of compression molding of the CFRP materials and study their mechanism. Based on anisotropic linear elastic mechanics, viscoelastic mechanics, and thermodynamics, as well as the Maxwell viscoelastic constitutive model, we first establish the constitutive model of thermorheologically simple CFRP materials (TSMs). Then, considering the influence of temperature on the initial stiffness and equilibrium stiffness, the concept of temperature stiffness coefficient is introduced, and the Cartier coordinate system is converted into a cylindrical coordinate system, thereby establishing the constitutive model of thermorheologically complex materials (TCMs) using the tensor form. Finally, by comparing to the structure of the Zocher model, the two constitutive models established in this study are verified. The research findings have important theoretical research significance for studying the compression molding mechanism of carbon fiber and further improving the quality of product molding.https://www.mdpi.com/1996-1944/13/10/2277CFRPcompression moldingconstitutive modelTSMstemperature stiffness coefficientTCMs
collection DOAJ
language English
format Article
sources DOAJ
author Jiuming Xie
Shiyu Wang
Zhongbao Cui
Jin Wu
Xuejun Zhou
spellingShingle Jiuming Xie
Shiyu Wang
Zhongbao Cui
Jin Wu
Xuejun Zhou
Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
Materials
CFRP
compression molding
constitutive model
TSMs
temperature stiffness coefficient
TCMs
author_facet Jiuming Xie
Shiyu Wang
Zhongbao Cui
Jin Wu
Xuejun Zhou
author_sort Jiuming Xie
title Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
title_short Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
title_full Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
title_fullStr Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
title_full_unstemmed Research on Anisotropic Viscoelastic Constitutive Model of Compression Molding for CFRP
title_sort research on anisotropic viscoelastic constitutive model of compression molding for cfrp
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-05-01
description The carbon-fiber-reinforced polymer (CFRP) is a mainstream material for lightweight products from the end of the 20th century to the present day. Its compression molding process has obvious advantages in mass production. This paper attempts to establish the constitutive models of compression molding of the CFRP materials and study their mechanism. Based on anisotropic linear elastic mechanics, viscoelastic mechanics, and thermodynamics, as well as the Maxwell viscoelastic constitutive model, we first establish the constitutive model of thermorheologically simple CFRP materials (TSMs). Then, considering the influence of temperature on the initial stiffness and equilibrium stiffness, the concept of temperature stiffness coefficient is introduced, and the Cartier coordinate system is converted into a cylindrical coordinate system, thereby establishing the constitutive model of thermorheologically complex materials (TCMs) using the tensor form. Finally, by comparing to the structure of the Zocher model, the two constitutive models established in this study are verified. The research findings have important theoretical research significance for studying the compression molding mechanism of carbon fiber and further improving the quality of product molding.
topic CFRP
compression molding
constitutive model
TSMs
temperature stiffness coefficient
TCMs
url https://www.mdpi.com/1996-1944/13/10/2277
work_keys_str_mv AT jiumingxie researchonanisotropicviscoelasticconstitutivemodelofcompressionmoldingforcfrp
AT shiyuwang researchonanisotropicviscoelasticconstitutivemodelofcompressionmoldingforcfrp
AT zhongbaocui researchonanisotropicviscoelasticconstitutivemodelofcompressionmoldingforcfrp
AT jinwu researchonanisotropicviscoelasticconstitutivemodelofcompressionmoldingforcfrp
AT xuejunzhou researchonanisotropicviscoelasticconstitutivemodelofcompressionmoldingforcfrp
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