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Modeling a robust wind-speed forecasting to apply to wind-energy production

机译:建模强大的风速预测,适用于风能生产

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摘要

To obtain green energy, it is important to know, in advance, an estimation of the weather conditions. In case of wind energy, another important factor is to determine the right moment to stop the turbine in case of strong winds to avoid its damage. This research introduces a tool, not only to increase green energy generation from wind, reducing CO2 emissions, but also to prevent failures in turbines that is especially interesting for manufacturers. Using Artificial Neural Networks and data from meteorological stations located in Gran Canaria airport and Tenerife Sur airport (both in Canary Islands, Spain), a robust prediction system able to determine wind speed with a mean absolute error of 0.29 m per second is presented.
机译:为了获得绿色能源,重要的是提前了解天气条件的估计。 在风能的情况下,另一个重要因素是确定在强风的情况下停止涡轮机的正确时刻,以避免其损坏。 本研究介绍了一种工具,不仅增加了从风中产生的绿色能量,还原二氧化碳排放量,还可以防止对制造商特别有趣的涡轮机中的故障。 利用位于大加那利岛机场和特内里费岛(西班牙Canare Islands)的气象站的人工神经网络和数据,能够确定风速的强大预测系统,呈现出每秒0.29 m的平均绝对误差。

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