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Optimal heat and electric power flows in the presence of intermittent renewable source, heat storage and variable grid electricity tariff

机译:在存在间歇性再生源,蓄热和可变电网电费的情况下,最佳热量和电力流动

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摘要

To decarbonize and increase the flexibility in the heating and electricity sectors, large heat pumps, combined heat and power plants, renewables and storage technologies are increasingly being installed. This results in a tighter coupling between the electricity and heat distribution networks. Hence, the two networks need to be operated in an integrated way so that their synergies can be exploited. The main challenge in that regard is the lack of suitable tools that can capture the detailed operating parameters of both networks simultaneously. This paper proposes a population-based optimal power flow model for integrated heat and electricity distribution networks. An extended energy hub approach is used to model the components of the integrated energy system in a modular form. Active and reactive power balances, heat power balance and optimal management of storage technologies in the presence of intermittent renewables and variable tariffs are considered. The proposed method is then tested using a case study of highly coupled electricity and heat distribution networks consisting of a heat pump, a gas boiler, a combined heat and power plant, a wind turbine and a thermal storage together with a variable electricity tariff. It is found that above 97% of the surplus production from the wind power plant is effectively used in the system and 10.35% of the heat demand is effectively shifted from the peak hours to the cheap-electricity hours. The results show that the proposed method can be used as a decision support tool that can be used for the optimal integration of heat and electricity distribution networks. It also maximizes the synergy that can be captured from the multi-energy systems in general and from the heat and electricity distribution networks in particular.
机译:为了脱碳并提高加热电源和电力部门的灵活性,越来越多地安装大型热泵,综合发电,可再生能源和储存技术。这导致电力和热分配网络之间的更严格的耦合。因此,两个网络需要以综合方式操作,以便可以利用其协同作用。这方面的主要挑战是缺乏合适的工具,可以同时捕获两个网络的详细操作参数。本文提出了一种用于集成热电配电网的基于人口的最佳功率流模型。扩展能量集线器方法用于以模块化形式模拟集成能量系统的组件。考虑了在存在间歇性可再生能源和可变关税的情况下,积极和无功功率余额,热功率平衡和存储技术的最佳管理。然后使用由热泵,燃气锅炉,组合的热量和发电厂,风力涡轮机和可变电量的热存储器组成的高耦合电和热分配网络的壳体研究进行测试。结果发现,在系统中有效地使用了从风电厂的97%的剩余生产中,从高峰小时到廉价电量时,有效地使用了10.35%的热量需求。结果表明,该方法可用作决策支持工具,可用于热电分配网络的最佳集成。它还最大化了协同作用,这些协同作用可以通常可以从多能量系统捕获,并且特别是来自热电分布网络。

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