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Design and Implementation of a Microgrid Energy Management System

机译:微电网能源管理系统的设计与实现

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A microgrid is characterized by the integration of distributed energy resources and controllable loads in a power distribution network. Such integration introduces new, unique challenges to microgrid management that have never been exposed to traditional power systems. To accommodate these challenges, it is necessary to redesign a conventional Energy Management System (EMS) so that it can cope with intrinsic characteristics of microgrids. While many projects have shown excellent research outcomes, they have either tackled portions of the characteristics or validated their EMSs only via simulations. This paper proposes a Microgrid Platform (MP), an advanced EMS for efficient microgrid operations. We design the MP by taking into consideration (i) all the functional requirements of a microgrid EMS (i.e., optimization, forecast, human–machine interface, and data analysis) and (ii) engineering challenges (i.e., interoperability, extensibility, and flexibility). Moreover, a prototype system is developed and deployed in two smart grid testbeds: UCLA Smart Grid Energy Research Center and Korea Institute of Energy Research. We then conduct experiments to verify the feasibility of the MP design in real-world settings. Our testbeds and experiments demonstrate that the MP is able to communicate with various energy devices and to perform an energy management task efficiently.
机译:微电网的特点是在配电网络中集成了分布式能源和可控负载。这种集成给微电网管理带来了新的独特挑战,而传统电力系统从未遇到过这些挑战。为了应对这些挑战,有必要重新设计常规的能源管理系统(EMS),使其能够应对微电网的固有特性。尽管许多项目显示了出色的研究成果,但它们要么解决了部分特征,要么仅通过仿真来验证其EMS。本文提出了微电网平台(MP),这是一种用于高效微电网运营的高级EMS。我们在设计MP时要考虑到(i)微电网EMS的所有功能要求(即优化,预测,人机界面和数据分析)和(ii)工程挑战(即互操作性,可扩展性和灵活性) )。此外,还开发了原型系统,并将其部署在两个智能电网测试平台中:UCLA智能电网能源研究中心和韩国能源研究所。然后,我们进行实验以验证在实际环境中进行MP设计的可行性。我们的测试台和实验表明,MP能够与各种能源设备进行通信,并能够有效地执行能源管理任务。

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