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Co-Optimization Scheme for Distributed Energy Resource Planning in Community Microgrids

机译:社区微电网分布式能源规划的协同优化方案

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摘要

Microgrids with distributed energy resources are being favored in various communities to lower the dependence on utility-supplied energy and cut the CO emissions from coal-based power plants. This paper presents a co-optimization strategy for distributed energy resource planning to minimize total annualized cost at the maximal fuel savings. Furthermore, the proposed scheme aids the community microgrids in satisfying the requirements of U.S. Department of Energy (DOE) and state renewable energy mandates. The method of Lagrange multipliers is employed to maximize fuel savings by satisfying Karush-Kuhn-Tucker conditions. With the Fourier transform and particle swarm optimization, the right mix of distributed energy resources is determined to decrease the annualized cost. A case study to test the proposed scheme for a community microgrid is presented. To validate its effectiveness, an economic justification of the solution and its comparison with HOMER Pro are also illustrated.
机译:具有分布式能源资源的微电网在各个社区中受到青睐,以降低对公用事业提供的能源的依赖,并减少煤电厂的CO排放。本文提出了一种用于分布式能源资源计划的共同优化策略,以最大程度地节省燃料的方式使年度总成本最小化。此外,建议的方案还可以帮助社区微电网满足美国能源部(DOE)的要求和各州的可再生能源要求。通过满足Karush-Kuhn-Tucker条件,采用拉格朗日乘数法可以最大程度地节省燃料。通过傅里叶变换和粒子群优化,可以确定分布式能源的正确组合,从而降低年化成本。提出了一个案例研究,以测试针对社区微电网的拟议方案。为了验证其有效性,还说明了该解决方案的经济合理性以及与HOMER Pro的比较。

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