Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade

Synthetic materials using epoxy resin and woven Kevlar fiber nanocomposites were fabricated in the presence of functionalized multiwalled carbon nanotubes (F-MWCNTs). Kevlar-reinforced epoxy nanocomposites were designed to manufacture a small blade of vertical axis wind turbines (VAWT). It is import...

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Main Authors: Yasser Elhenawy, Yasser Fouad, Haykel Marouani, Mohamed Bassyouni
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/3/422
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author Yasser Elhenawy
Yasser Fouad
Haykel Marouani
Mohamed Bassyouni
author_facet Yasser Elhenawy
Yasser Fouad
Haykel Marouani
Mohamed Bassyouni
author_sort Yasser Elhenawy
collection DOAJ
description Synthetic materials using epoxy resin and woven Kevlar fiber nanocomposites were fabricated in the presence of functionalized multiwalled carbon nanotubes (F-MWCNTs). Kevlar-reinforced epoxy nanocomposites were designed to manufacture a small blade of vertical axis wind turbines (VAWT). It is important to estimate the deflection of the versatile composite turbine blades to forestall the blades from breakage. This paper investigates the effect of F-MWCNTs on mechanics and deflection of reinforced epoxy composites. The outcomes show that the mixing of F-MWCNTs with epoxy resin using a sonication process has a significant influence on the mechanical properties. Substantial improvement on the deflections was determined based on finite element analysis (FEA). The vortices from the vertical axis wind turbines (VAWTs) blades have a negative impact on power efficiency, since small blades are shown to be effective in reducing tip vortexes within the aerospace field. To support the theoretical movement of the VAWT blade, modeling calculations and analyzes were performed with the ANSYS code package to achieve insight into the sustainability of epoxy nanocomposites for turbine blade applications below aerodynamic, gravitational, and centrifugal loads. The results showed that the addition of F-MWCNTs to epoxy and Kevlar has a significant effect on the bias estimated by finite element analysis. ANSYS analysis results showed lower deflection on the blade using epoxy with an additional of 0.50 wt.% of MWCNTs-COOH at tip speed ratios of 2.1, 2.6, and 3.1.
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spelling doaj.art-812fff45596e42c29b5580ec23854c2a2023-12-03T15:08:54ZengMDPI AGPolymers2073-43602021-01-0113342210.3390/polym13030422Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine BladeYasser Elhenawy0Yasser Fouad1Haykel Marouani2Mohamed Bassyouni3Mechanical Power Engineering Department, Port-Said University, Port-Said 42526, EgyptFaculty of Applied Engineering, Muzahimiyah Branch, King Saud University, P.O. Box 2454, Riyadh 11451, Saudi ArabiaFaculty of Applied Engineering, Muzahimiyah Branch, King Saud University, P.O. Box 2454, Riyadh 11451, Saudi ArabiaDepartment of Chemical Engineering, Faculty of Engineering, Port Said University, Port-Said 42526, EgyptSynthetic materials using epoxy resin and woven Kevlar fiber nanocomposites were fabricated in the presence of functionalized multiwalled carbon nanotubes (F-MWCNTs). Kevlar-reinforced epoxy nanocomposites were designed to manufacture a small blade of vertical axis wind turbines (VAWT). It is important to estimate the deflection of the versatile composite turbine blades to forestall the blades from breakage. This paper investigates the effect of F-MWCNTs on mechanics and deflection of reinforced epoxy composites. The outcomes show that the mixing of F-MWCNTs with epoxy resin using a sonication process has a significant influence on the mechanical properties. Substantial improvement on the deflections was determined based on finite element analysis (FEA). The vortices from the vertical axis wind turbines (VAWTs) blades have a negative impact on power efficiency, since small blades are shown to be effective in reducing tip vortexes within the aerospace field. To support the theoretical movement of the VAWT blade, modeling calculations and analyzes were performed with the ANSYS code package to achieve insight into the sustainability of epoxy nanocomposites for turbine blade applications below aerodynamic, gravitational, and centrifugal loads. The results showed that the addition of F-MWCNTs to epoxy and Kevlar has a significant effect on the bias estimated by finite element analysis. ANSYS analysis results showed lower deflection on the blade using epoxy with an additional of 0.50 wt.% of MWCNTs-COOH at tip speed ratios of 2.1, 2.6, and 3.1.https://www.mdpi.com/2073-4360/13/3/422polymer nanocompositevertical axis wind turbinefinite element analysisANSYS.
spellingShingle Yasser Elhenawy
Yasser Fouad
Haykel Marouani
Mohamed Bassyouni
Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
Polymers
polymer nanocomposite
vertical axis wind turbine
finite element analysis
ANSYS.
title Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
title_full Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
title_fullStr Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
title_full_unstemmed Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
title_short Performance Analysis of Reinforced Epoxy Functionalized Carbon Nanotubes Composites for Vertical Axis Wind Turbine Blade
title_sort performance analysis of reinforced epoxy functionalized carbon nanotubes composites for vertical axis wind turbine blade
topic polymer nanocomposite
vertical axis wind turbine
finite element analysis
ANSYS.
url https://www.mdpi.com/2073-4360/13/3/422
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AT haykelmarouani performanceanalysisofreinforcedepoxyfunctionalizedcarbonnanotubescompositesforverticalaxiswindturbineblade
AT mohamedbassyouni performanceanalysisofreinforcedepoxyfunctionalizedcarbonnanotubescompositesforverticalaxiswindturbineblade