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A tool to estimate maximum arbitrage from battery energy storage by maintaining voltage limits in an LV network

机译:通过维持LV网络中的电压限制来估算电池能量存储最大套利的工具

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Modern electricity distribution networks are facilitated with a high share of renewable generation, especially solar photovoltaics (PV). PV source results in fluctuating power injection and bi-directional power flow in a system, which can introduce overvoltage problem in low voltage (LV) networks. Using battery energy storages can mitigate this problem. This paper proposes a tool, which searches for an optimum daily operation strategy and size of batteries so that owners get maximum arbitrage benefit while maintaining voltage constraints. A time-series optimal power flow is formulated and solved in Generic Algebraic Modelling System (GAMS) platform. Day-ahead rooftop PV power profile over a year is studied and categorized by using k-means clustering algorithm. Seasonal load patterns and clustered PV power patterns are then used to execute optimal power flow. The resulting payback period of PV-battery system is also estimated.
机译:可再生能源特别是太阳能光伏(PV)的高份额促进了现代配电网络的发展。光伏电源会导致系统中的功率注入和双向功率波动,这会在低压(LV)网络中引入过压问题。使用电池储能器可以缓解此问题。本文提出了一种工具,该工具可搜索最佳的日常操作策略和电池尺寸,从而使车主在保持电压约束的同时获得最大的套利收益。在通用代数建模系统(GAMS)平台中制定并解决了时序最优潮流。利用k-means聚类算法对一年前的屋顶光伏发电概况进行了研究和分类。然后,使用季节性负载模式和群集PV功率模式来执行最佳功率流。还估算了光伏电池系统的最终投资回收期。

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