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A Costs-Emissions Bi-objective Optimization of Virtual Power Plant Operation in Hongfeng Eco-town

机译:洪丰生态镇虚拟电厂运行的成本 - 排放双目标优化

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This paper addresses the optimal operation issues for virtual power plant (VPP). Two conflicting objectives are considered and a bi-objective problem is formulated mathematically. The first objective (economical performance) contains cost of fuel consumption and cost of power purchased from grid. The second objective (environmental performance) takes account of several pollutant emissions. Multi-objective particle swarm optimization (MOPSO) is applied to derive the Pareto frontier which is a set of noninferior solutions. A realistic case study is performed on Hongfeng Eco-town as a model of VPP, which includes various distributed energy resources (DER) such as hydropower units, wind turbines, photovoltaic panels, combined cooling heating and power units (CCHP) and storage devices. Simulation concentrates on three strategies: 1) money-oriented, 2) environment-only, 3) Pareto-optimal. Comparison of simulation results reveals that Pareto-optimal strategy can better compromise costs and emissions. Further, system operators could choose noninferior solutions from Pareto frontier according to their specific preference.
机译:本文讨论了虚拟电厂(VPP)的最佳运行问题。考虑了两个矛盾的目标,并在数学上制定了双目标问题。第一个目标(经济性能)包含燃油消耗成本和从网格购买的电力成本。第二个目标(环境绩效)考虑了几种污染物排放。应用多目标粒子群优化(MOPSO)来衍生帕累托前沿,这是一组非流化溶液。在宏峰生态镇执行一个现实的案例研究作为VPP的模型,包括各种分布式能源(DER),例如水电单元,风力涡轮机,光伏板,组合冷却加热和动力单元(CCHP)和存储装置。模拟专注于三种策略:1)赚钱,2)仅限环境,3)帕累托 - 最佳。仿真结果的比较表明,帕累托最优策略可以更好地妥协成本和排放。此外,系统操作员可以根据其特定偏好选择来自帕累托前沿的非溶液。

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