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Optimal management of local energy trading in future smart microgrid via pricing

机译:通过定价对未来智能微电网中的本地能源交易进行优化管理

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In this paper, we investigate optimal management of local energy trading in future smart micro-grid (SMG) via pricing. In SMG, energy consumers and providers, in addition to trading with utility company, can also perform local energy trading controlled by a local trading manager (LTM) for reaping benefits. We first quantify the benefits achieved by the consumers and providers from local trading and then formulate a two-layered optimization framework to investigate i) how the energy consumers and providers maximize their benefits via appropriately adjusting their local trading decisions in response to the LTM's pricing, and ii) how the LTM adjusts its price in local market to benefit the consumers and providers as much as possible while guaranteeing a required gain for itself. We propose two algorithms to solve the layered optimization problem and perform numerical experiments with practical data set to validate the proposed local trading model and the algorithms.
机译:在本文中,我们通过定价研究了未来智能微电网(SMG)中本地能源交易的最优管理。在SMG中,能源消费者和提供者除了与公用事业公司进行贸易外,还可以执行由当地贸易经理(LTM)控制的本地能源贸易,以获取收益。我们首先量化消费者和提供者从本地交易中获得的收益,然后制定一个两层优化框架来研究:i)能源消费者和提供者如何通过根据LTM的定价适当调整其本地交易决策来最大化其收益, ii)LTM如何调整其在当地市场的价格,以尽可能地使消费者和提供者受益,同时又保证自己获得所需的收益。我们提出了两种解决分层优化问题的算法,并通过实际数据集进行了数值实验,以验证所提出的本地交易模型和算法。

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