Measurement and analysis of residual stresses and warpage in fiber reinforced plastic and hybrid components

dc.date.accessioned2021-03-05T14:11:42Z
dc.date.available2021-03-05T14:11:42Z
dc.date.issued2021-02-16
dc.description.sponsorshipGefördert durch den Publikationsfonds der Universität Kassel
dc.identifierdoi:10.17170/kobra-202103053432
dc.identifier.urihttp://hdl.handle.net/123456789/12592
dc.language.isoeng
dc.relation.doidoi:10.3390/met11020335
dc.rightsNamensnennung 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectresidual stresseng
dc.subjectwarpageeng
dc.subjectincremental hole drilling methodeng
dc.subjectfiber reinforced plasticeng
dc.subject.ddc620
dc.subject.ddc660
dc.subject.swdFaserverstärkter Kunststoffger
dc.subject.swdHybridwerkstoffger
dc.subject.swdVerzugger
dc.subject.swdEigenspannungger
dc.titleMeasurement and analysis of residual stresses and warpage in fiber reinforced plastic and hybrid componentseng
dc.typeAufsatz
dc.type.versionpublishedVersion
dcterms.abstractGlass/carbon fiber reinforced plastic (GFRP/CFRP) and hybrid components have attracted increasing attention in lightweight applications. However, residual stresses induced in the manufacturing process of these components can result in warpage and, eventually, negatively affect the mechanical performance of the composite structures. In the present work, GFRP, CFRP, GFRP/steel and CFRP/steel hybrid components were manufactured through the prepreg-press-technology always employing the same process parameters. The residual stresses of these components were measured through the hole drilling method (HDM), based on an adequate formalism to evaluate the residual stresses for orthotropic materials including the calculation of the calibration coefficients via finite element analysis (FEA). In FEA, the real material lay-up and mechanical properties of the samples were considered. The warpage induced by residual stresses was measured after the samples were removed from the tool. The measured residual stresses and warpage of four different types of samples were compared and results were analyzed in depth. The results obtained can be extended to other hybrid materials and even could be used for designing multi-stable laminates for application in adaptive structures. Moreover, the effects of the drilling process parameters of HDM, e.g., the drilling speed, the drilling increment and the zero-depth setting, on the resulting residual stresses of GFRP were investigated. The reliability of residual stress measurements in GFRP using HDM was validated through mechanical bending tests. The conclusions concerning the choice of optimal drilling parameters for GFRP could be directly applied for other types of samples considered in the present work.eng
dcterms.accessRightsopen access
dcterms.creatorWu, Tao
dcterms.creatorTinkloh, Steffen Rainer
dcterms.creatorTröster, Thomas
dcterms.creatorZinn, Wolfgang
dcterms.creatorNiendorf, Thomas
dcterms.extent23 Seiten
dcterms.source.articlenumber335
dcterms.source.identifierEISSN 2075-4701
dcterms.source.issueIssue 2
dcterms.source.journalMetalseng
dcterms.source.volumeVolume 11
kup.iskupfalse

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