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Dynamics of Drone Blades Based on Polymer Nanocomposites Incorporating Graphene, Carbon Nanotube, and Fullerene

Workineh G. GomeraDepartment of Materials Science and Engineering, Adama Science and Technology University, Adama 01888, EthiopiaTomasz TańskiInstitute of Engineering Materials and Biomaterials, Faculty of Mechanical Engineering, Silesian University of Technology, 44-100 Gliwice, PolandJung Yong KimDepartment of Renewable Energy, Korean Institute of Technology and Culture, Samarkand International University of Technology, Samarkand 140100, Uzbekistan
Polymersjournal2026en
ABI

Аннотация

Polymer nanocomposites offer significant potential for improving the strength-to-weight ratio and dynamic behavior of drone blades. This study examines the vibration characteristics of tapered aramid (Kevlar)/epoxy composite blades reinforced with nanocarbon fillers-graphene (2D), multi-walled carbon nanotubes (MWCNTs, 1D), and fullerene (0D)-to determine the most effective filler for enhancing stiffness and operational stability. The laminated blades (300 mm length, 200 mm width, root thickness 13 mm, tip thickness 8 mm) incorporate ply drop-offs and a central honeycomb core. Modeling was performed using classical laminate plate theory integrated with the finite element method (FEM) in MATLAB (R2016a). Under clamped-free-free-free boundary conditions, the study considered rotational speeds of 750-2250 rpm, setting angles of 30-60°, various fiber orientations, and nanofiller contents of 0-10 wt.%. The results indicate that while the setting angle minimally affects natural frequency, it significantly influences damping in modes (1,2) and (2,1). Increasing nanofiller content improves stiffness, with optimal performance observed near 5 wt.%. At 1500 rpm in mode (1,1), MWCNTs provided the greatest enhancement. Overall, MWCNTs exhibited superior stiffness improvement and rotational stability compared to other fillers.

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Показатели — AkademScholar · Скоро