3D Printing of a Tidal Turbine Blade Using Two Methods of SLS and FFF of a Reinforced PA12 Composite: A Comparative Study
ENSTA Bretagne, IRDL, UMR CNRS 6027, F-29200 Brest, France
Doctor
S Vertical Company, F-92290 Paris, France Laboratory of Inorganic Materials for Sustainable Energy Technology (LIMSET), UM6P, Benguerir 43150, Morocco
ENSTA Bretagne, IRDL, UMR CNRS 6027, F-29200 Brest, France
Doctor
LIMAT Laboratory, FSBM, FSAC, Hassan II University, Casablanca 20000, Morocco
DOI: https://doi.org/10.36956/sms.v6i1.1002
Received: 17 December 2023; Published: 6 March 2024
Copyright © 2024 Marwane Rouway, Doctor, Doctor, Doctor. Published by Nan Yang Academy of Sciences Pte. Ltd..
Abstract
This study scrutinizes the thermomechanical dynamics of 3D-printed hydrofoil blades utilizing a carbon and glass bead-reinforced thermoplastic polymer. Comparative analyses underscore the pivotal role of polymer reinforcement in augmenting mechanical strength and mitigating deformation and residual stress. The investigation elucidates the expeditious and cost-efficient manufacturing potential of low-cost Fused Filament Fabrication (FFF) printers for small-scale blades, revealing exemplary mechanical performance with nominal deflection and warping in the PA12-CB/GB printed blade. A comprehensive juxtaposition between Selective Laser Sintering (SLS) and FFF printing methods favors SLS due to its isotropic properties, notwithstanding remediable warping. Emphasizing the rigorous marine environment, the study cautions against the anisotropic properties of FFF-printed blades, despite their low mechanical warping. These discernments contribute to hydrofoil design optimization through numerical analysis, shedding light on additive manufacturing’s potential for small blades in renewable energy, while underscoring the imperative for further research to advance these techniques.
Keywords: 3D printing, Tidal blade, Selective laser sintering (SLS), Fused filament fabrication (FFF)