Fracture toughening of carbon fiber composites based on electrospun nanofiber interleafs

dc.contributor.authorSchär, Matthias
dc.contributor.authorYoosefinejad, Ata
dc.contributor.authorSanandiya, Naresh
dc.contributor.authorHeravi, Hamed
dc.contributor.authorAdl, Peyman
dc.contributor.authorTischhauser, Frederick
dc.contributor.authorEglitis, Edgars
dc.contributor.authorHajikazemi, Mohammad
dc.contributor.authorBrauner, Christian
dc.date.accessioned2026-03-05T14:30:35Z
dc.date.issued2026
dc.description.abstractDelamination is a critical failure mode in composite laminates that degrades the structural performance and load-carrying capacity. This study investigates the improvement of Mode I and Mode II interlaminar fracture toughness of carbon fiber-reinforced polymer (CFRP) laminates through the interleaving of electrospun thermoplastic nanofiber mats. Nanofiber veils were inserted between carbon fiber plies to enhance resistance to delamination under tensile opening (Mode I) and in-plane shear (Mode II) loading. The effects of nanofiber interleaving were evaluated using double cantilever beam (DCB) tests for Mode I and end notch flexure (ENF) tests for Mode II. Both tests were conducted on a symmetric quasi-isotropic laminate [-45/45/90/05]s containing a thick unidirectional 0° ply at the mid-plane. Thermally induced residual stresses resulting from mismatches in ply coefficients of thermal expansion and unsymmetric arm lay-ups were accounted for in the experimental determination of fracture toughness. These stresses, generated during cooling from the cure temperature, influence the effective strain energy release rate and were included in the fracture toughness calculations to ensure accurate toughness evaluation and consistency with numerical predictions. The results demonstrate improved delamination fracture toughness, highlighting the potential of nanofiber interleaving for aerospace and wind energy applications.
dc.identifier.doi10.3390/jcs10030134
dc.identifier.issn2504-477X
dc.identifier.urihttps://irf.fhnw.ch/handle/11654/55958
dc.identifier.urihttps://doi.org/10.26041/fhnw-15709
dc.issue3
dc.language.isoen
dc.publisherMDPI
dc.relation.ispartofJournal of Composites Science
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subject.ddc620 - Ingenieurwissenschaften und Maschinenbau
dc.titleFracture toughening of carbon fiber composites based on electrospun nanofiber interleafs
dc.type01A - Beitrag in wissenschaftlicher Zeitschrift
dc.volume10
dspace.entity.typePublication
fhnw.InventedHereYes
fhnw.ReviewTypeAnonymous ex ante peer review of a complete publication
fhnw.affiliation.hochschuleHochschule für Technik und Umwelt FHNWde_CH
fhnw.affiliation.institutInstitut für Kunststofftechnikde_CH
fhnw.oastatus.auroraVersion: Published *** Embargo: None *** Licence: CC BY *** URL: https://v2.sherpa.ac.uk/id/publication/35299
fhnw.openAccessCategoryGold
fhnw.pagination134
fhnw.publicationStatePublished
fhnw.targetcollection7f6a48d3-1546-49fe-bdbf-1cf1467b2826
relation.isAuthorOfPublication257ec681-d827-4a06-b9d3-c3bb2f849f88
relation.isAuthorOfPublication897be82c-8653-438c-954c-653ba629ee4a
relation.isAuthorOfPublication40eda2d4-696c-4aeb-98ff-8a54c640cf73
relation.isAuthorOfPublication.latestForDiscovery257ec681-d827-4a06-b9d3-c3bb2f849f88
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