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Thermal analysis of postcured aramid fiber/epoxy composites

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dc.title Thermal analysis of postcured aramid fiber/epoxy composites en
dc.contributor.author Karvanis, Konstantinos
dc.contributor.author Rusnáková, Soňa
dc.contributor.author Krejčí, Ondřej
dc.contributor.author Kalendová, Alena
dc.relation.ispartof Reviews on Advanced Materials Science
dc.identifier.issn 1606-5131 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2021
utb.relation.volume 60
utb.relation.issue 1
dc.citation.spage 479
dc.citation.epage 489
dc.type article
dc.language.iso en
dc.publisher Walter de Gruyter GmbH
dc.identifier.doi 10.1515/rams-2021-0036
dc.relation.uri https://www.degruyter.com/document/doi/10.1515/rams-2021-0036/html
dc.subject aramid fiber en
dc.subject epoxy en
dc.subject FRP en
dc.subject post-cure en
dc.subject thermal analysis en
dc.description.abstract In this study, aramid fiber-reinforced polymer (AFRP) composites were prepared and then postcured under specific heating/cooling rates. By dynamic mechanical analysis, the viscoelastic properties of the AFRP composites at elevated temperatures and under various frequencies were determined. Thermomechanical analysis (TMA), in the modes of creep-recovery and stress-relaxation tests, was also performed. Furthermore, differential scanning calorimetry was also used, and the decomposition of the AFRP composites, aramid fibers, and pure postcured epoxy, in two different atmospheres, namely, air atmosphere and nitrogen (N2) atmosphere, was explored by the thermogravimetric analysis (TGA). From this point of view, the aramid fibers showed remarkably thermal resistance, in N2 atmosphere, and the volume fraction of fibers (φf) was calculated to be φf = 51%. In the TGA experiments, the postcured AFRP composites showed very good thermal resistance, both in air and N2 atmosphere, and this characteristic in conjunction with their relatively high Tg, which is in the range of 85-95°C, depending on the frequency and the determination method, classifies these composites as potential materials in applications where the resistance in high temperatures is a required characteristic. © 2021 Konstantinos Karvanis et al., published by De Gruyter 2021. en
utb.faculty Faculty of Technology
utb.faculty Faculty of Technology
dc.identifier.uri http://hdl.handle.net/10563/1010462
utb.identifier.obdid 43883241
utb.identifier.scopus 2-s2.0-85109621400
utb.identifier.wok 000683038500001
utb.source j-scopus
dc.date.accessioned 2021-08-10T07:48:39Z
dc.date.available 2021-08-10T07:48:39Z
dc.description.sponsorship TBU in Zlin [IGA/FT/2021/006]
dc.description.sponsorship IGA/FT/2021/006
dc.rights Attribution 4.0 International
dc.rights.uri https://creativecommons.org/licenses/by/4.0/
dc.rights.access openAccess
utb.ou Department of Production Engineering
utb.ou Department of Polymer Engineering
utb.contributor.internalauthor Karvanis, Konstantinos
utb.contributor.internalauthor Rusnáková, Soňa
utb.contributor.internalauthor Krejčí, Ondřej
utb.contributor.internalauthor Kalendová, Alena
utb.fulltext.sponsorship This work and the project is realized with the financial support of the internal grant of TBU in Zlin No. IGA/FT/2021/006 funded from the resources of specific university research.
utb.wos.affiliation [Karvanis, Konstantinos; Rusnakova, Sona] Tomas Bata Univ Zlin, Fac Technol, Dept Prod Engn, Vavreckova 275, Zlin 76001, Czech Republic; [Krejci, Ondrej; Kalendova, Alena] Tomas Bata Univ Zlin, Fac Technol, Dept Polymer Engn, Vavreckova 275, Zlin 76001, Czech Republic
utb.scopus.affiliation Department of Production Engineering, Faculty of Technology, Tomas Bata University in Zlin, Vavrečkova 275, Zlin, 760 01, Czech Republic; Department of Polymer Engineering, Faculty of Technology, Tomas Bata University in Zlin, Vavrečkova 275, Zlin, 760 01, Czech Republic
utb.fulltext.projects IGA/FT/2021/006
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Attribution 4.0 International Kromě případů, kde je uvedeno jinak, licence tohoto záznamu je Attribution 4.0 International