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FATIGUE ANALYSIS OF A 12-MW WIND TURBINE BLADE

机译:12兆瓦风轮机叶片的疲劳分析

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摘要

In 2017, the MHI Vestas released a 9.5-MW offshore wind turbine. It is also actively researching and developing a 10-MW offshore wind turbine. As the capacity of a wind turbine increases, the sizes of all its system components, including length and weight, correspondingly increase. Consequently, as a wind turbine becomes larger, it becomes necessary to analyze the fatigue load applied to its entire system. The first reason for such an analysis is to achieve a safe but not overly designed large wind turbine. Second, most wind turbine accidents involve aging turbines and are related to fatigue analysis. Accordingly, the purpose of fatigue analysis is to safely design a wind turbine that sustains repeated loads within its design life. In this study, the blades and loads for the fatigue analysis of a 12-MW floating offshore wind turbine are calculated based on the National Renewable Energy Laboratory (NREL) 5-MW wind turbine blades. The calculated loads are applied to the Markov matrix through a preprocessing, such as the cycle counting method. Finally, the equivalent fatigue load is estimated based on both mean and range. In this study, only the equivalent fatigue load on the turbine blade is calculated. However, if fatigue analysis is to be performed for all parts using equivalent loads, it is possible to design the wind turbine to fully withstand such loads throughout its design life, and prevent the overdesign of each part as well.
机译:2017年,三菱重工维斯塔斯(MHI Vestas)发布了9.5兆瓦的海上风力涡轮机。它还积极研究和开发10兆瓦的海上风力发电机。随着风力涡轮机容量的增加,其所有系统组件的大小(包括长度和重量)也相应增加。因此,随着风力涡轮机的变大,有必要分析施加到其整个系统的疲劳载荷。进行这种分析的第一个原因是要获得安全但设计不过分的大型风力发电机。其次,大多数风力涡轮机事故都涉及老化的涡轮机,并且与疲劳分析有关。因此,疲劳分析的目的是安全地设计在其设计寿命内承受重复载荷的风力涡轮机。在这项研究中,基于国家可再生能源实验室(NREL)5兆瓦风力涡轮机叶片计算了12兆瓦海上浮式风力涡轮机的叶片和载荷,进行了疲劳分析。通过预处理(例如循环计数方法)将计算出的载荷应用于Markov矩阵。最后,基于均值和范围估算等效疲劳载荷。在这项研究中,仅计算了涡轮叶片上的等效疲劳载荷。但是,如果要使用等效载荷对所有零件进行疲劳分析,则可以将风力涡轮机设计为在其整个设计寿命中完全承受此类载荷,并防止每个零件的过度设计。

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