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Investigation of Wind Turbine Power Generation During Atmospheric Icing by Multi-Disciplinary Experimentation

机译:多学科实验研究结冰过程中风力发电机的发电

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This paper presents an aerodynamic analysis of power loss of a representative 1.5 MW wind turbine for various icing conditions using a unique combination of two experimental methods for airfoil performance analysis. Atmospheric icing conditions varying in temperature, MVD, and LWC are generated in an icing facility to simulate a 45 minute icing event. The ice shapes are then molded for preservation and subsequent wind-tunnel testing. Lift and drag measurements are used to estimate the total power production of the iced wind turbine using a BEMT prediction code. A16% loss of airfoil lift at operational AoA is observed for freezing fog conditions. Drag increases at C_t = 0.5 are observed to be 190% at temperatures near 0°C, 145% near -10°C, and 80% near -20°C. An analysis of the wind turbine aerodynamic loads due to atmospheric icing yields power losses ranging from 25% to 30%. An exception to these results exists for a single super large droplet (SLD) icing case in which lift decrease and drag increase are more severe. The analysis gives insight to potential control strategies for wind turbine operators attempting to minimize revenue loss in cold-climate operations.
机译:本文使用两种实验方法的独特组合,对翼型性能进行了独特的组合,提出了在各种结冰条件下具有代表性的1.5 MW风力发电机的功率损耗的空气动力学分析。在结冰设施中会产生温度,MVD和LWC变化的大气结冰条件,以模拟45分钟的结冰事件。然后将冰块成型以保存并随后进行风洞测试。升力和阻力测量值用于使用BEMT预测代码估算冰风力涡轮机的总发电量。在冰雾条件下,在运行AoA时机翼升力损失了16%。在C_t = 0.5时,在0°C附近温度下的阻力增加为190%,在-10°C附近则为145%,在-20°C附近为80%。对由于大气结冰引起的风力涡轮机空气动力负荷的分析得出的功率损耗范围为25%至30%。对于单个的超大液滴(SLD)结冰情况,这些结果是一个例外,在这种情况下,升力下降和阻力增加更为严重。该分析为试图将冷气候运行中的收入损失降至最低的风力涡轮机运营商提供了潜在的控制策略。

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