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Advanced Markovian wind energy models for smart grid applications

机译:适用于智能电网应用的高级马尔可夫风能模型

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Markov Chains are widely used for developing wind energy resource models for power system analysis applications. However, the Markovian wind models currently available in the literature cannot capture the temporal variations in wind speed/power output over time periods shorter than 1 hour. This means that they are unsuitable for smart grid applications, which typically require simulations with short time steps, e.g. to the order of minutes or seconds. This paper introduces a novel approach to modelling wind energy resources using “Nested Markov Chains”. It is shown in the paper that this method can accurately capture higher-frequency variations in the wind energy resource. The methodology is demonstrated using recorded onshore and offshore wind data sets. The resulting model can be readily applied for smart grid analysis, allowing the user to replace large historical wind data sets with a simple and efficient analytical model.
机译:马尔可夫链被广泛用于开发用于电力系统分析应用的风能资源模型。然而,目前文献中可用的马尔可夫风模型无法捕获短于1小时的时间段内风速/功率输出的时间变化。这意味着它们不适用于智能电网应用,而智能电网应用通常需要以较短的时间步长进行仿真,例如到分钟或秒的数量级。本文介绍了一种使用“嵌套马尔可夫链”建模风能资源的新颖方法。本文表明,该方法可以准确捕获风能资源中的高频变化。使用记录的陆上和海上风能数据集演示了该方法。生成的模型可以轻松地应用于智能电网分析,从而允许用户使用简单而有效的分析模型替换大型历史风数据集。

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