Experimental and virtual testing of a composite-aluminium aircraft wingbox under thermal loading
dc.contributor.author
dc.date.accessioned
2023-04-26T11:28:57Z
dc.date.available
2023-04-26T11:28:57Z
dc.date.issued
2023-07
dc.identifier.issn
1270-9638
dc.identifier.uri
dc.description.abstract
Nowadays, carbon fibre composites are increasingly being used in aircraft which, in turn, has lead to carbon-metallic bolted assemblies. The large difference in the thermal expansion coefficient between these materials, and the considerable temperature excursions that occur during aircraft operations, lead to thermal stresses that may trigger different forms of local damage. This complex phenomenon can affect the integrity of large primary structural components such as an aircraft wingbox. In this work, we perform an experimental campaign and a finite element simulation of a full hybrid carbon-aluminium wingbox assembly. The structure contains two rib designs: a baseline rib and a new stiffer rib design with the objective of improving the structural behaviour. The wingbox was subjected to thermal loading. The numerical model is validated against the experimental data and employed to study additional phenomena in detail that cannot be analysed directly from the experiments. The model is able to reproduce reasonably well the experimental data, and demonstrates that thermal loading cannot be neglected since it leads to considerable stresses, particularly in the metallic ribs. Moreover, the stiffer rib design provides improved behaviour mainly at the bolted joints with the spar
dc.description.sponsorship
This work was carried out under the framework of the EU H2020 Clean Sky 2 Project INNOHYBOX - Innovative solutions for metallic ribs or fittings introduced in a composite box to optimally
deal with thermo-mechanical effects, developed within the consortium of AMADE research group from the University of Girona, the technological centre EURECAT and the company SOFITEC, with
Dassault Aviation being the project topic manager. This project has received funding from the Clean Sky 2 Joint Undertaking (JU) under grant agreement No. 785433. The JU receives support from the European Union’s Horizon 2020 research and innovation programme and the Clean Sky 2 JU members other than the European Union. José M. Guerrero would also like to acknowledge the funding of the post-doc grant Margarita Salas with reference REQ2021_A_15 financed by the Spanish Ministerio de Universidades and the European Union - Next GenerationEU
Open Access funding provided thanks to the CRUE-CSIC agreement with Elsevier
dc.format.mimetype
application/pdf
dc.language.iso
eng
dc.publisher
Elsevier
dc.relation.isformatof
Reproducció digital del document publicat a: https://doi.org/10.1016/j.ast.2023.108329
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Aerospace Science and Technology, 2023, vol. 138, art. núm. 108329
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Articles publicats (D-EMCI)
dc.rights
Attribution-NonCommercial-NoDerivatives 4.0 International
dc.rights.uri
dc.subject
dc.title
Experimental and virtual testing of a composite-aluminium aircraft wingbox under thermal loading
dc.type
info:eu-repo/semantics/article
dc.rights.accessRights
info:eu-repo/semantics/openAccess
dc.relation.projectID
info:eu-repo/grantAgreement/EC/H2020/785433/EU/Innovative solutions for metallic ribs or fittings introduced in a composite box to optimally deal with thermo-mechanical effects/INNOHYBOX
dc.type.version
info:eu-repo/semantics/publishedVersion
dc.identifier.doi
dc.identifier.idgrec
037116
dc.contributor.funder
dc.type.peerreviewed
peer-reviewed
dc.relation.FundingProgramme
dc.relation.ProjectAcronym