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Identification of Yaw Error Inherent Misalignment for Wind Turbine Based on SCADA Data: A Data Mining Approach*

机译:SCADA数据的风力机偏航误差固有偏心识别:数据挖掘方法 *

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As one of the main control subsystem implemented for controlling the wind turbine nacelle position in parallel with the inflow wind, the yaw control system directly determines the power generation performance of wind turbines. Thus, accurate measurement of yaw error is important in yaw control strategy. However, the existence of inherent misalignments on yaw error usually severely impact the performance of yaw control strategies. Aiming at the identification of yaw error inherent misalignment, a data-mining based inherent misalignment identification and compensation approach for yaw error is proposed. The raw data set is firstly preprocessed and further segmented into different partitions. A curve fitting technique is finally implemented for yaw error inherent misalignment estimation. The simulation data set from a simulation software GH Bladed is used to testify the effectiveness of this approach, and the result shows high accuracy on yaw error inherent misalignment identification.
机译:作为实现与流入风并​​行控制风力发电机机舱位置的主要控制子系统之一,偏航控制系统直接决定了风力发电机的发电性能。因此,偏航误差的准确测量在偏航控制策略中很重要。然而,关于偏航误差的固有失准的存在通常严重影响偏航控制策略的性能。针对偏航误差固有失准的识别,提出了一种基于数据挖掘的偏航固有失准识别与补偿方法。原始数据集首先经过预处理,然后进一步细分为不同的分区。最终实现了曲线拟合技术,用于偏航误差固有失准估计。来自仿真软件GH Bladed的仿真数据集用于证明该方法的有效性,结果表明在偏航误差固有失准识别方面具有很高的准确性。

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