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DISTRIBUTED ENERGY STORAGE CONTROL FOR OPTIMAL ADOPTION OF SOLAR ENERGY IN RESIDENTIAL NETWORKS

机译:分布式储能控制,以实现住宅网络中太阳能的最佳应用

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Environmental concerns, global warming and fossil fuel prices are creating a shift in the expectations of consumers and industries to move toward renewable energy resources. However, the inability to control the output of renewable resources, like wind and solar, results in operational challenges in power systems. The operational challenges of renewable resources can be met by energy storage systems. The energy storage systems scheduling can be used to control the effect of intermittent renewable energy resources. Furthermore, energy storage systems can be used for ancillary services, peak reduction, and mitigating contingencies in the distribution and transmission networks [1].Distributed photovoltaic (DPV) rooftop panels are considered as renewable energy resources in this paper. Depending on the DPV size and solar irradiation, DPV adoption can create problems for the distribution network. In addition, utility companies have to pay different prices for electricity during different times of the day due to the dynamic electricity market. Therefore, the DPV adoption can be controlled with the help of real-time electricity price and the load profile.Facing these challenges, this paper presents an operational optimization algorithm for a Distributed Energy Storage (DES) system. The DES system presents a fleet of batteries connected to distribution transformers. The DES can be used for withholding DPV power before it is bid into the market. Withholding DPV generation represents a gaming method to realize higher revenues due to the time varying cost of electricity. Energy storage systems may be used to control DPV power variation and thus help distribution network operations[2].The objective of this paper is to present a DES optimal economic control system to improve the DPV adoption in power distribution networks. The control system decisions depend on the load profiles, and the real-time Locational Marginal Price (LMP).Economic operation of the DES is a complex problem because of the time dependency of the battery capacity (where sufficient energy reserves must be maintained in case of power loss), the solar irradiation uncertainty, and the real-time electricity price variability. The mathematical approach used is the Discrete Ascent Optimal Programming (DAOP) algorithm. An advantage of DAOP is its assurance of convergence after a finite number of computational iterations.
机译:环境问题,全球变暖和化石燃料价格正在为消费者和行业迁移到可再生能源的期望。然而,无法控制可再生资源的输出,如风和太阳能,导致电力系统中的操作挑战。能量存储系统可以满足可再生资源的运营挑战。能量存储系统调度可用于控制间歇可再生能源资源的效果。此外,能量存储系统可用于分配和传输网络中的辅助服务,峰值减少和减轻突发化[1]。分配的光伏(DPV)屋顶板被认为是本文的可再生能源。根据DPV尺寸和太阳照射,DPV采用可以为分销网络产生问题。此外,由于动态电力市场,公用事业公司必须在当天的不同时间支付不同的电力价格。因此,可以在实时电价和负载曲线的帮助下控制DPV采用。拍摄这些挑战,本文提出了一种用于分布式能量存储(DES)系统的操作优化算法。 DES系统呈现出与配电变压器相连的电池队列。该DES可用于在投标进入市场之前扣留DPV电源。扣留DPV生成代表了一种博彩方法,以实现由于电力的时变成率较高的收入。能量存储系统可用于控制DPV功率变化,从而帮助分布网络操作[2]。本文的目的是提高DES最佳的经济控制系统,以改善配电网络中的DPV采用。控制系统决策取决于负载型材,而实时位置边际价格(LMP)。由于电池容量的时间依赖性(如果必须保持足够的能量储备,则DES的实时位置操作是复杂的问题功率损失),太阳照射不确定性,以及实时电价变异性。使用的数学方法是离散的上升最优编程(DAOP)算法。 DAOP的一个优点是在有限数量的计算迭代之后的收敛保证。

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