数据驱动的老化风电机组故障识别*

Yue Liu, Long Zhang
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引用次数: 0

摘要

提出了一种基于数据驱动的风力发电系统老化评估方法。该方法直接利用风电机组系统的输入和输出数据,采用自回归的带外生(ARX)模型对风电机组系统进行辨识。输入和输出数据包括风速、发电量和俯仰角,由具有机械功率、磁化电感、俯仰角控制器增益和俯仰角变化率四种老化情况的风力机仿真模型生成。利用风力机在不同老化水平下的发电功率和俯仰角数据,得到数据驱动模型。通过对比ARX模型识别的不同状态下的模型参数,结果表明,参数的变化可以反映出模型的老化程度。这表明该方法可以检测风力涡轮机的老化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data-driven fault identification of ageing wind turbine*
This paper proposes an ageing evaluation method for wind turbine system by using a data driven method. This method directly uses the input and output data of the wind turbine system, and the autoregressive with exogenous (ARX) model to identify the wind turbine system. The input and output data include wind speed, generated power, and pitch angle, and they are generated by a wind turbine simulation model with four ageing cases: mechanical power, magnetizing inductance, pitch angle controller gain and pitch angle change rate. By using the generated power and pitch angle data of wind turbine under different ageing levels, the data-driven models can be obtained. By comparing the model parameters in different states identified by the ARX model, results show that the degree of ageing can be reflected by the parameter changes. This demonstrates that the method can detect the ageing of wind turbines.
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