Effect of similar and dissimilar interface layers on delamination in hybrid plain woven glass/carbon epoxy laminated composite double cantilever beam under Mode-I loading

dc.contributor.authorSuman, M.L.J.
dc.contributor.authorMurigendrappa, S.M.
dc.contributor.authorKattimani, S.
dc.date.accessioned2026-02-05T09:26:55Z
dc.date.issued2021
dc.description.abstractEffect of similar and dissimilar interface layers on delamination in hybrid plain woven glass/carbon epoxy laminated composite double cantilever beam under Mode-I loading has been investigated experimentally and analytically. Glass-glass, glass-carbon interface layers in three different configurations of hybrid plain woven glass/carbon epoxy laminated composites were fabricated. Valvo's mode partition method from the literature is utilised to compute individual modal contributions and total fracture toughness of the hybrid composite laminates. Mode-I fracture toughness contribution is compared with standard data reduction schemes of ASTM D5528-13. The comparison reveals that Valvo's mode partition method considers mode-mixity and provides conservative results. The Valvo's mode partition does not require any correction factors including curve fitting, it provides a straightforward method for evaluating fracture toughness as they are based on the mechanics of composite materials. The comparison of R-curves of hybrid configurations reveal that the insertion of carbon with glass at the interface of symmetric hybrid configuration enhances initial fracture toughness and stabilises whereas, with the change in layer configuration of anyone arm of the double-cantilever beam, the crack growth trend is also affected irrespective of same interface layers. The fractography analysis of delamination surfaces reveals that crack propagation through a resin-rich layer creates a rougher fracture surface resulting in higher energy dissipation as compared to crack propagation through resin-rich pockets. © 2021 Elsevier Ltd
dc.identifier.citationTheoretical and Applied Fracture Mechanics, 2021, 114, , pp. -
dc.identifier.issn1678442
dc.identifier.urihttps://doi.org/10.1016/j.tafmec.2021.102988
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/23154
dc.publisherElsevier B.V.
dc.subjectCantilever beams
dc.subjectCarbon
dc.subjectCrack propagation
dc.subjectCracks
dc.subjectCurve fitting
dc.subjectDelamination
dc.subjectEnergy dissipation
dc.subjectEnergy release rate
dc.subjectGlass
dc.subjectHybrid materials
dc.subjectLaminating
dc.subjectNanocantilevers
dc.subjectResins
dc.subjectStrain energy
dc.subjectStrain rate
dc.subjectWeaving
dc.subjectCarbon-epoxy
dc.subjectDouble-cantilever beam
dc.subjectGlass/carbon hybrid
dc.subjectHybrid interface
dc.subjectInterface layer
dc.subjectMode partition
dc.subjectMode-I delamination
dc.subjectPlain woven
dc.subjectStrain energy release rate
dc.subjectWoven glass
dc.subjectFracture toughness
dc.titleEffect of similar and dissimilar interface layers on delamination in hybrid plain woven glass/carbon epoxy laminated composite double cantilever beam under Mode-I loading

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