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Degradation of Power Generation Performance due to Effects of Various Ice Shapes and Accretions on Wind Turbine Blades

机译:各种冰形和沉积物对风力涡轮机叶片的影响导致发电性能下降

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摘要

In today's world, green energy has become a key initiative as an alternative energy resource. Wind turbines are widely used to harvest wind energy in seasonal and cold environments. Although efficient, cold weather conditions negatively affects wind turbine operations due to ice formation. Damage from icing is seen on blade-tips when super-cooled water droplets that form in colder environments rapidly freeze and accumulate. Different forms of ice structures are formed along the leading edge to the trailing edge of the turbine blade and are classified into horn, rime and glaze ice. These various ice structures can cause power losses, mechanical and electrical failures and pose serious safety hazards (e.g., ice throwing). Ongoing efforts have been in place to develop anti-icing and de-icing strategies, but only a few are available on the market. In this computational study using ANSYS 14, a variable pitched National Renewable Energy Laboratory (NREL) and National Advisory Committee for Aeronautics (NACA) airfoils are used to determine the effects of various ice formations along the cord of turbine blade. Ice accretions on turbine blade can cause significant performance issues such as decreased lift and increased drag leading to performance and energy losses. Understanding the flow behavior of iced airfoil is critical in determining what geometric features of ice contributes to the performance degradation and aerodynamic failures in wind turbines. This study may help optimize future designs and implementation of ice mitigations systems to maximize turbine power output.
机译:在当今世界,绿色能源已成为替代能源的一项重要举措。风力涡轮机广泛用于在季节性和寒冷环境中收集风能。尽管有效,但寒冷的天气条件会由于结冰而对风力涡轮机的运行产生负面影响。当在较冷的环境中形成的过冷水滴迅速结冰并积聚时,会在刀片尖端看到结冰的损害。沿着涡轮机叶片的前缘到后缘形成不同形式的冰结构,并分为角冰,霜冰和釉冰。这些各种冰结构可能导致功率损失,机械和电气故障,并造成严重的安全隐患(例如,抛冰)。一直在努力开发防冰和除冰策略,但是市场上只有少数几种。在使用ANSYS 14进行的这项计算研究中,变桨国家可再生能源实验室(NREL)和国家航空咨询委员会(NACA)机翼用于确定沿涡轮机叶片帘线的各种冰层的影响。涡轮叶片上的积冰会引起严重的性能问题,例如升力降低和阻力增加,从而导致性能和能量损失。了解冰翼型的流动特性对于确定冰的哪些几何特征会导致风力涡轮机的性能下降和空气动力学故障至关重要。这项研究可能有助于优化减冰系统的未来设计和实施,以最大化涡轮机的功率输出。

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