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A variable twist blade concept for more effective wind generation: design and realization

机译:变扭叶片概念,可更有效地产生风:设计和实现

摘要

The increasing utilization of green resources is driving research toward the design and development of new and more efficient energy harvesting systems. As far as the wind energy sector is concerned, aerodynamic design and the definition of new airfoils, specifically devoted to the application of wind rotors, has given a huge impulse in this direction. However, the rigid blade concept is still an important constraint in energy extraction during off-design conditions or start-up phases. In order to cope with this problem, a new system has been developed and manufactured within the specifically funded VENTURAS® (VENTo: Una Risorsa Altamente Sfruttabile or ‘wind: a highly exploitable resource') Project. The new system applies morphing to modify blade twisting along the blade span (modifying the pitch angle of some sections) while maintaining the same chord distribution as the design configuration. This innovation offers the possibility of partially adapting the blade configuration to the operating point, thus improving rotor efficiency. Design details mechanisms and deformable skin are discussed. Application to small/-micro wind turbines seems the most promising field for such equipment, but its extension to different fields (such as UAV morphing wings) could be of a certain interest as far as energy saving is concerned.
机译:对绿色资源的日益利用正推动着对新的和更有效的能量收集系统的设计和开发的研究。就风能行业而言,空气动力学设计和新型翼型的定义,特别是针对风轮的应用,已在这个方向上产生了巨大的推动力。但是,刚性叶片概念仍然是非设计条件或启动阶段能量提取的重要限制。为了解决这个问题,已经在专门资助的VENTURAS®(VENTO:Una Risorsa Altamente Sfruttabile或“风:高度可利用的资源”)项目中开发并制造了一种新系统。新系统应用变形来修改沿叶片跨度的叶片扭曲(修改某些部分的桨距角),同时保持与设计配置相同的弦分布。这项创新提供了使叶片配置部分适应工作点的可能性,从而提高了转子效率。讨论了设计细节机制和可变形皮肤。在小型/微型风力涡轮机上的应用似乎是此类设备最有前途的领域,但就节能而言,将其扩展到不同领域(例如UAV变形机翼)可能会引起一定的兴趣。

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    Gili Piero; Frulla Giacomo;

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  • 年度 2016
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