Graphene/sol–gel modified polyurethane coating for wind turbine blade leading edge protection: Properties and performance

Author:

Dashtkar Arash1,Johansen Nicolai Frost-Jensen2ORCID,Mishnaevsky Leon2,Williams Neil A1,Hasan Shadi W3,Wadi Vijay S3,Silvello Alessio4,Hadavinia Homayoun1ORCID

Affiliation:

1. Department of Mechanical Engineering, Kingston University, London, UK

2. Department of Wind Energy, Technical University of Denmark, Roskilde, Denmark

3. Center for Membranes and Advanced Water Technology (CMAT), Department of Chemical Engineering, Khalifa University of Science and Technology, Abu Dhabi, UAE

4. Thermal Spray Center (CPT), Universitat de Barcelona, Barcelona, Spain

Abstract

The development of two novel elastomeric erosion resistant coatings for the protection of wind turbine blades is presented. The coatings are prepared by modifying polyurethane (PU) with (i) hydroxyl functionalised graphene nanoparticles (f-GNP) and (ii) f-GNP and a hydrophobic silica-based sol–gel (SG). Tensile, monotonic and cyclic compression and tearing tests have been conducted on the neat PU and the two newly developed elastomeric PU nanocomposites (PU + GNP and PU + GNP + SG) to allow their properties to be compared. The test results showed that the mechanical properties of PU and the modified PUs have strong dependency on temperature, strain rate and nanoparticles loading and addition of GNP and SG to PU improved the mechanical properties. Compared to PU, Young’s modulus and modulus of toughness of PU + GNP + SG increased 95% and 124%, respectively. The PU + GNP nanocomposite displayed the highest tearing strength and the PU + GNP + SG nanocomposite showed the highest elongation at break. An investigation of the microstructures of the modified PUs by FTIR, field emission scanning electron microscope (FESEM) and energy-dispersive X-ray spectroscopy (EDX) are discussed. Hydrophobicity of the PU and developed PU nanocomposites are reported by measuring their water droplet contact angles and their free surface energies.

Funder

Innovation Foundation of Denmark

Publisher

SAGE Publications

Subject

Materials Chemistry,Polymers and Plastics,Ceramics and Composites

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