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A Meteorological Information Mining-Based Wind Speed Model for Adequacy Assessment of Power Systems With Wind Power

机译:基于气象信息挖掘的风电系统充分性评估风速模型

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摘要

Accurate wind speed simulation is an essential prerequisite to analyze the power systems with wind power. A wind speed model considering meteorological conditions and seasonal variations is proposed in this paper. Firstly, using the path analysis method, the influence weights of meteorological factors are calculated. Secondly, the meteorological data are classified into several states using an improved Fuzzy C-means (FCM) algorithm. Then the Markov chain is used to model the chronological characteristics of meteorological states and wind speed. The proposed model was proved to be more accurate in capturing the characteristics of probability distribution, auto-correlation and seasonal variations of wind speed compared with the traditional Markov chain Monte Carlo (MCMC) and autoregressive moving average (ARMA) model. Furthermore, the proposed model was applied to adequacy assessment of generation systems with wind power. The assessment results of the modified IEEE-RTS79 and IEEE-RTS96 demonstrated the effectiveness and accuracy of the proposed model.
机译:准确的风速模拟是分析具有风力的电力系统的必要前提。提出了考虑气象条件和季节变化的风速模型。首先,采用路径分析方法,计算了气象因素的影响权重。其次,使用改进的模糊C均值(FCM)算法将气象数据分为几种状态。然后使用马尔可夫链对气象状态和风速的时间特征进行建模。与传统的马尔可夫链蒙特卡洛(MCMC)模型和自回归移动平均(ARMA)模型相比,该模型被证明在捕获概率分布,自相关和风速季节性变化等特征方面更为准确。此外,将所提出的模型应用于风能发电系统的充分性评估。修改后的IEEE-RTS79和IEEE-RTS96的评估结果证明了该模型的有效性和准确性。

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