Title
Integrating additively manufactured continuous glass fibre inserts in compression moulding: A novel approach to mitigating fibre–matrix separation effectVersion
PostprintDocument type
Journal ArticleEmbargo end date
2028-03-31Language
EnglishRights
© 2026 ElsevierAccess
Embargoed accessPublisher’s version
https://doi.org/10.1016/j.compositesa.2025.109497Published at
Composites: Part A Applied Science and Manufacturing Vol. 202. N. art. 109497. March 2026Publisher
ElsevierKeywords
Additive manufacturingTopology
ODS 9 Industria, innovación e infraestructura
Subject (UNESCO Thesaurus)
Materials technologyUNESCO Classification
Materials technologyAbstract
This study presents a novel approach to mitigate fibre–matrix separation defects in compression-moulded thermoplastic composite components by integrating additively manufactured (3D-printed) continuou ... [+]
This study presents a novel approach to mitigate fibre–matrix separation defects in compression-moulded thermoplastic composite components by integrating additively manufactured (3D-printed) continuous fibre-reinforced inserts into the stiffener ribs. The design of these inserts was guided by topology optimisation and refined to align with additive manufacturing principles. The feasibility of embedding 3D-printed inserts was demonstrated, yielding hybrid parts with consistent quality, accurate positioning, and a defect-free insert/moulded part interface. Mechanical testing under three-point bending revealed substantial performance gains: stiffness, strength, deflection, and energy absorption improved by factors of up to 1.5, 3.5, 1.4, and 12, respectively. A 45 % reduction in insert thickness further enhanced manufacturability and interfacial bonding, shifting the failure mode from interfacial delamination at the rib base to fibre rupture at the rib tip. Despite the reduced material volume, stiffness decreased by only ∼17 %, while strength remained stable and toughness improved significantly. [-]
Funder
Gobierno VascoGobierno Vasco
Program
Elkartek 2022Ikasiker 2022-2023
Number
KK-2022-00036IT1613-22
Award URI
Sin informaciónSin información
Project
Procesos de fabricación sostenibles e inteligentes de composites termoplásticos de nueva generación (ZE-KONP)Jon Aurrekoetxea Narbarte
Collections
- Articles - Engineering [765]
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