In-Plane Quasi-Static and Out-Of Dynamic Behavior of Nanofiber Interleaved Glass/Epoxy Composites and Finite Element Simulation
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Date
2021
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
ELSEVIER SCI LTD
Open Access Color
Green Open Access
No
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Publicly Funded
No
Abstract
Eight-ply glass/epoxy composites interleaved by electrospun Polysulfone (PSF) nanofibers were manufactured by vacuum-assisted hand lay-up method. The effect of nanofibrous interlaminar layers on the mechanical performance of laminated composites was investigated under both in-plane quasi-static and out-of-plane lowvelocity impact (LVI) test conditions. Low-velocity impact responses of reference and nanofiber interleaved composite laminates were modeled by LS-Dyna finite element (FE) code for numerical simulations. The results of the quasi-static mechanical tests show that PSF nanofiber interleaving increases the tensile and compressive strength by 10.5% and 25.5%, respectively. PSF nanofibers played an important role in improving the impact damage resistance of composite laminates with increasing impact energy levels. The low-velocity impact tests results indicated that PSF nanofibers decreased the fiber breakage area at 20 J and 30 J energy levels by about 26% and 28%, respectively. Besides, PSF nanofiber interleaving improved damage threshold load values by 4.8%, 15.2%, and 23% at 10 J, 20 J, and 30 J energy levels, respectively. Experimental and FE simulation results were comparatively presented in terms of force-time, force-deflection, and energy-time curves. A good agreement was achieved between experimental and simulation results.
Description
Keywords
Low-Velocity Impact, Finite Element Analysis, Composite Laminates, Nanofibers, Polysulfone, Interleaving, Low-Velocity Impact, Delamination, Strength, Criteria, Damages, Phase
Turkish CoHE Thesis Center URL
Fields of Science
0205 materials engineering, 02 engineering and technology, 0210 nano-technology
Citation
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
14
Source
COMPOSITE STRUCTURES
Volume
270
Issue
Start Page
114085
End Page
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Citations
CrossRef : 15
Scopus : 17
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Mendeley Readers : 14
SCOPUS™ Citations
17
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Web of Science™ Citations
16
checked on Feb 04, 2026
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