Renewable Energy, Vol.125, 155-165, 2018
A robust biomimetic blade design for micro wind turbines
Inspired by bird wings that enable robust aerodynamic force production and stable flight, we propose a biomimetic blade design for small wind turbines that is capable of achieving a high integral power coefficient, C-p, over a broad range of tip-speed ratios, lambda, and hence enhances robustness in aerodynamic performance. We first developed a basic blade design with bird-inspired flexed wing morphology and investigated its aerodynamic characteristics with computational fluid dynamics. Our results demonstrated that the swept-forward shaped portion proximal to wing root augmented C-p at smaller lambda, whereas the distal swept-backward shaped portion improved C-p at larger lambda. We further conducted a morphology optimization and developed an optimized flexion blade that is capable of achieving a remarkably improved C-p over a broad range of lambda. To evaluate the aerodynamic robustness under variable tip-speed ratios in an integral way, we here propose a new Robustness Index (Ri) and find that the optimized-flexion blade outperforms a conventional blade based on Blade Element Momentum Theory by 8.1%, indicating marked robustness in power output. Our results indicate that of great potential for wind turbines robustness-oriented biomimetic blade design can be a practical and effective methodology in wind-based sustainable energy harvesting. (C) 2018 Elsevier Ltd. All rights reserved.
Keywords:Small wind turbine;Biomimetic blade design;Aerodynamic robustness;Computational fluid dynamics;Blade shape optimization