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Commercial wind turbines modeling using single and composite cumulative probability density functions

机译:商业风力涡轮机采用单一和复合累积概率密度函数建模

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As wind turbines more widely used with newer manufactured types and larger electrical power scales, a brief mathematical modelling for these wind turbines operating power curves is needed for optimal site matching selections. In this paper, 24 commercial wind turbines with different ratings and different manufactures are modelled using single cumulative probability density functions modelling equations. A new mean of a composite cumulative probability density function is used for better modelling accuracy. Invasive weed optimization algorithm is used to estimate different models designing parameters. The best cumulative density function model for each wind turbine is reached through comparing the RMSE of each model. Results showed that Weibull-Gamma composite is the best modelling technique for 37.5% of the reached results.
机译:由于风力涡轮机更广泛地与较新的制造类型和更大的电力尺度一起使用,因此需要对这些风力涡轮机的简要数学建模,以获得最佳的网站匹配选择。 本文采用单累积概率密度函数建模方程建模了24个具有不同额定值和不同制造商的商用风力涡轮机。 复合累积概率密度函数的新平均值用于更好的建模精度。 侵入性杂草优化算法用于估计不同模型的设计参数。 通过比较每个模型的RMSE来达到每个风力涡轮机的最佳累积密度函数模型。 结果表明,Weibull-Gamma复合材料是37.5%的达到结果的最佳建模技术。

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