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A Model Predictive Control for the Dynamical Forecast of Operating Reserves in Frequency Regulation Services

机译:频率调节服务中操作储备动态预测的模型预测控制

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The intermittent and uncontrollable power output from the ever-increasing renewable energy sources, require large amounts of operating reserves to retain the system frequency within its nominal range. Based on day-ahead load forecasts, many research works have proposed conventional and stochastic approaches to define their optimum margins for reliability enhancement at reasonable production cost. In this work, we aim at delivering real-time load forecasting to lower the operating-reserve requirements based on intra-hour weather update predictors. Based on critical predictors and their historical data, we train an artificial model that is able to forecast the load ahead with great accuracy. This is a feed-forward neural network with two hidden layers, which performs real-time forecasts with the aid of a predictive model control developed to update the recommendations intra-hourly and, assessing their impact and its significance on the output target, it corrects the imposed deviations. Performing daily simulations for an annual time-horizon, we observe that significant improvements exist in terms of decreased operating reserve requirements to regulate the violated frequency. In fact, these improvements can exceed 80% during specific months of winter when compared with robust formulations in isolated power systems.
机译:从不断增长的可再生能源的间歇和无法控制的功率输出需要大量的操作储备来保留其标称范围内的系统频率。基于日前负载预测,许多研究工作已经提出了常规和随机的方法,以便以合理的生产成本为可靠性提高定义其最佳边距。在这项工作中,我们的目标是根据小时内天气更新预测器提供实时负载预测以降低运行储备需求。基于批判性预测因子及其历史数据,我们培养了一种人为模型,可以以极高的准确性预测载荷。这是一种具有两个隐藏层的前馈神经网络,其借助于开发的预测模型控制执行实时预测,以便每小时更新建议,并评估它们对输出目标的影响及其意义,纠正强加的偏差。为年代时间进行日常模拟,我们观察到,在减少的操作储备要求方面存在显着的改进,以规范违反频率。事实上,在冬季的特定月份,这些改善可以超过80%的冬季,与孤立的电力系统中的鲁棒配方相比。

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