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Battery Sizing for Different Loads and RES Production Scenarios through Unsupervised Clustering Methods

机译:通过无监督的聚类方法,电池尺寸为不同的负载和RES生产方案

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The increasing penetration of Renewable Energy Sources (RESs) in the energy mix is determining an energy scenario characterized by decentralized power production. Between RESs power generation technologies, solar PhotoVoltaic (PV) systems constitute a very promising option, but their production is not programmable due to the intermittent nature of solar energy. The coupling between a PV facility and a Battery Energy Storage System (BESS) allows to achieve a greater flexibility in power generation. However, the design phase of a PV+BESS hybrid plant is challenging due to the large number of possible configurations. The present paper proposes a preliminary procedure aimed at predicting a family of batteries which is suitable to be coupled with a given PV plant configuration. The proposed procedure is applied to new hypothetical plants built to fulfill the energy requirements of a commercial and an industrial load. The energy produced by the PV system is estimated on the basis of a performance analysis carried out on similar real plants. The battery operations are established through two decision-tree-like structures regulating charge and discharge respectively. Finally, an unsupervised clustering is applied to all the possible PV+BESS configurations in order to identify the family of feasible solutions.
机译:能量混合物中可再生能源(RESS)的普及率越来越多地确定具有分散功率生产的能量情景。在RESS发电技术之间,太阳能光伏(PV)系统构成了一个非常有前途的选择,但由于太阳能间歇性的性质,它们的生产是不可编程的。 PV设施和电池储能系统(BESS)之间的耦合允许在发电中实现更大的灵活性。然而,由于大量可能的配置,PV + BESS混合植物的设计阶段是具有挑战性的。本文提出了一种初步的程序,旨在预测适合与给定的PV工厂配置偶联的电池系列的初步程序。该拟议的程序适用于新的假想植物,以满足商业和工业负荷的能源需求。 PV系统产生的能量基于在类似的真实植物上进行的性能分析。通过调节充电和放电的两个决策结构建立电池操作。最后,将无监督的聚类应用于所有可能的PV + BESS配置,以便识别可行解决方案的系列。

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