Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization

ABSTRACT Conventional methods for manufacturing rotor blades, such as composite construction and die casting, are hindered by high costs due to expensive molds, while 3D printing often results in poor quality or high production costs with unfavorable cost‐per‐part scaling. Moreover, conventional air...

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Main Authors: Moritz Burmester, Abdullah Khisraw, Peter Dalhoff
Format: Article
Language:English
Published: Wiley 2025-09-01
Series:Wind Energy
Subjects:
Online Access:https://doi.org/10.1002/we.70046
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author Moritz Burmester
Abdullah Khisraw
Peter Dalhoff
author_facet Moritz Burmester
Abdullah Khisraw
Peter Dalhoff
author_sort Moritz Burmester
collection DOAJ
description ABSTRACT Conventional methods for manufacturing rotor blades, such as composite construction and die casting, are hindered by high costs due to expensive molds, while 3D printing often results in poor quality or high production costs with unfavorable cost‐per‐part scaling. Moreover, conventional airfoil designs perform poorly at Reynolds numbers below 100,000, necessitating larger rotors. This becomes especially problematic in wind tunnel studies, where multiple rotors must fit within a single wind tunnel for wake or multirotor research, significantly increasing both building costs and wind tunnel requirements. To address these challenges, this study develops high‐performance rotor blades for micro wind turbines that are aerodynamically efficient under low Reynolds number conditions and easy to manufacture. Using cambered plate airfoils, the optimization process employed a class shape transformation and seventh‐degree Bernstein polynomials. Aerodynamic performance was analyzed using XFOIL, with evaluations conducted at Reynolds numbers of 30,000, 40,000, and 50,000 to ensure robust performance across realistic operating scenarios. The iterative optimization employed both single‐objective and (genetic) multi‐objective algorithms, targeting both aerodynamic efficiency and manufacturability. The blade tested with the optimized MB‐LR2‐7.5 airfoil exhibited good performance in wind tunnel tests, closely matching Blade Element Momentum (BEM) simulations. This research highlights the potential of cambered plate airfoils to improve micro wind turbine performance while maintaining ease of manufacturing, with potential applications in unmanned aerial vehicles (UAVs), drone propellers, and ventilation systems. The findings advance the understanding of aerodynamic optimization in low Reynolds number environments, paving the way for more efficient and cost‐effective rotor designs.
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publishDate 2025-09-01
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spelling doaj-art-2ee7dbf329ea45fda38f5bbe3ec4300a2025-08-20T05:18:42ZengWileyWind Energy1095-42441099-18242025-09-01289n/an/a10.1002/we.70046Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil OptimizationMoritz Burmester0Abdullah Khisraw1Peter Dalhoff2Competence Center for Renewable Energies and Energy Efficiency (CC4E) HAW Hamburg Hamburg GermanyCompetence Center for Renewable Energies and Energy Efficiency (CC4E) HAW Hamburg Hamburg GermanyCompetence Center for Renewable Energies and Energy Efficiency (CC4E) HAW Hamburg Hamburg GermanyABSTRACT Conventional methods for manufacturing rotor blades, such as composite construction and die casting, are hindered by high costs due to expensive molds, while 3D printing often results in poor quality or high production costs with unfavorable cost‐per‐part scaling. Moreover, conventional airfoil designs perform poorly at Reynolds numbers below 100,000, necessitating larger rotors. This becomes especially problematic in wind tunnel studies, where multiple rotors must fit within a single wind tunnel for wake or multirotor research, significantly increasing both building costs and wind tunnel requirements. To address these challenges, this study develops high‐performance rotor blades for micro wind turbines that are aerodynamically efficient under low Reynolds number conditions and easy to manufacture. Using cambered plate airfoils, the optimization process employed a class shape transformation and seventh‐degree Bernstein polynomials. Aerodynamic performance was analyzed using XFOIL, with evaluations conducted at Reynolds numbers of 30,000, 40,000, and 50,000 to ensure robust performance across realistic operating scenarios. The iterative optimization employed both single‐objective and (genetic) multi‐objective algorithms, targeting both aerodynamic efficiency and manufacturability. The blade tested with the optimized MB‐LR2‐7.5 airfoil exhibited good performance in wind tunnel tests, closely matching Blade Element Momentum (BEM) simulations. This research highlights the potential of cambered plate airfoils to improve micro wind turbine performance while maintaining ease of manufacturing, with potential applications in unmanned aerial vehicles (UAVs), drone propellers, and ventilation systems. The findings advance the understanding of aerodynamic optimization in low Reynolds number environments, paving the way for more efficient and cost‐effective rotor designs.https://doi.org/10.1002/we.70046Bernstein polynomialscambered plate airfoilslow Reynolds numbersmulti‐objective optimization and genetic algorithmsrotor blade and airfoil optimization
spellingShingle Moritz Burmester
Abdullah Khisraw
Peter Dalhoff
Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
Wind Energy
Bernstein polynomials
cambered plate airfoils
low Reynolds numbers
multi‐objective optimization and genetic algorithms
rotor blade and airfoil optimization
title Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
title_full Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
title_fullStr Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
title_full_unstemmed Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
title_short Designing High‐Performance, Manufacturing‐Friendly Rotor Blades for Micro Wind Turbines via Cambered Plate Airfoil Optimization
title_sort designing high performance manufacturing friendly rotor blades for micro wind turbines via cambered plate airfoil optimization
topic Bernstein polynomials
cambered plate airfoils
low Reynolds numbers
multi‐objective optimization and genetic algorithms
rotor blade and airfoil optimization
url https://doi.org/10.1002/we.70046
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