High-velocity impact behavior of nonwoven mats and unidirectional prepreg hemp and flax fibers reinforced hybrid biocomposites

dc.contributor.author Baysal, Ataberk
dc.contributor.author Turkmen, Halit Süleyman
dc.contributor.author Yayla, Paşa
dc.contributor.authorID orcid.org/0000-0001-5508-7236
dc.contributor.authorID orcid.org/0000-0002-1787-9475
dc.contributor.department Uçak Mühendisliği
dc.date.accessioned 2025-01-03T11:39:25Z
dc.date.available 2025-01-03T11:39:25Z
dc.date.issued 2024
dc.description.abstract High specific impact strength and stiffness are demanded in various applications, leading to the widespread utilization of fiber-reinforced polymers. Synthetic fiber-reinforced polymers have been used to meet these engineering requirements. However, the current popularity of biocomposites arises from their environmental friendliness, ease of availability, and affordability, making them a favored alternative to synthetic-based fiber-reinforced polymers. An assessment must be conducted to determine whether biocomposites can replace their synthetic fiber counterparts, necessitating a thorough investigation into their impact behavior. This study aims to unveil the impact performance of hybrid biocomposites made from unidirectional prepregs comprising flax/polypropylene fibers and nonwoven mats composed of hemp/polypropylene fibers. The impact performance of hybrid biocomposites has also been studied concerning the number of layers and stacking sequence. Eight different designs of biocomposite plates are manufactured through compression molding and subsequently subjected to high-velocity impact tests. Additionally, numerical simulation using the FEM is utilized to model and analyze the impact behavior of one specimen. The test results indicate that each design possesses unique characteristics and impact behaviors differ. Highlights Adding prepreg significantly improved mechanical performance in the biocomposites. Performance enhancement varies depending on the stacking sequence. Adding multiple layers of UD prepregs enhances mat impact performance. Numerical simulations validate the Tsai-Wu criterion for impact testing.
dc.identifier.citation Baysal, A, Turkmen, H.S. and Yayla, P. "High-velocity impact behavior of nonwoven mats and unidirectional prepreg hemp and flax fibers reinforced hybrid biocomposites". Polymer Composites, 45 (6): 5399-5415. doi:10.1002/pc.28135
dc.identifier.endpage 5415
dc.identifier.issue 6
dc.identifier.startpage 5399
dc.identifier.uri https://doi.org/10.1002/pc.28135
dc.identifier.uri http://hdl.handle.net/11527/26106
dc.identifier.volume 45
dc.language.iso en_US
dc.publisher Wiley
dc.relation.ispartof Polymer Composites
dc.rights.license CC BY-NC-ND 4.0
dc.sdg.type none
dc.subject fiber-reinforced polymers
dc.subject biocomposites
dc.subject prepregs
dc.subject high-velocity impact testing
dc.subject flax fibers
dc.subject hemp fibers
dc.title High-velocity impact behavior of nonwoven mats and unidirectional prepreg hemp and flax fibers reinforced hybrid biocomposites
dc.type Article
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