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Design of a micro-wind turbine for implementation in low wind speed environments

机译:用于在低风速环境中实施的微型风力发电机的设计

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Installed wind capacity has increased globally by an average of 23% over the past 18 years according to the Global Wind Energy Council. Despite the fact that wind energy is one of the fastest growing renewable energy sources today, there is limited literature on micro-wind turbine technology. Micro-wind turbines are generally characterized as small-scale turbines designed for use by individuals rather than for large scale energy production. Although the power output of micro-wind turbines is much less than small and large-scale wind turbines, micro-wind turbines are less costly, easier to install, and can power small electrical devices such as LED signs and cell phones. This paper describes the design and development of multiple blade designs that will be used on a modular micro-wind turbine for use in environments with wind speeds of 3-14 m/s. The turbine blades were designed to output 10 Watts to power small electronic devices. Considerations in designing this system involved airfoil shape, motor and electrical components, and nacelle housing. Testing involved the use of a wind tunnel and resulted in blade design iterations to enhance system performance. The final design includes 3D printed blades that are modular as the blades can easily be interchanged for use in a variety of applications, including educational demonstrations. With 3D printing technologies gaining ground, the reduced cost of printing micro-wind turbine blades is gaining popularity. This paper showcases the team's progress through system requirements, concept development, embodiment design and prototyping, testing and refinement, and detail design.
机译:根据全球风能理事会的数据,过去18年来,全球风能装机容量平均增长了23%。尽管事实上,风能是当今增长最快的可再生能源之一,但有关微型风力涡轮机技术的文献很少。微型风力涡轮机的特征通常是设计为供个人使用而不是用于大规模能源生产的小型涡轮机。尽管微型风力涡轮机的输出功率远小于小型和大型风力涡轮机,但微型风力涡轮机的成本更低,易于安装,并且可以为小型电子设备(如LED标牌和手机)供电。本文描述了将在模块化微风力涡轮机上使用的多叶片设计的设计和开发,该微型风力涡轮机可用于风速为3-14 m / s的环境中。涡轮叶片的设计输出功率为10瓦,可为小型电子设备供电。设计此系统时,需要考虑的因素包括机翼形状,电机和电气组件以及机舱外壳。测试涉及使用风洞,并导致叶片设计迭代以增强系统性能。最终设计包括模块化的3D打印刀片,因为刀片可以轻松互换以用于各种应用,包括教育演示。随着3D打印技术的发展,降低微型风力涡轮机叶片的打印成本越来越受欢迎。本文通过系统需求,概念开发,实施设计和原型制作,测试和完善以及详细设计来展示团队的进展。

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