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A Distributed Power System Control Architecture for Improved Distribution System Resiliency

机译:分布式电力系统控制架构,用于改进的分布系统弹性

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摘要

Electric distribution systems around the world are seeing an increasing number of utility-owned and non-utility-owned (customer-owned) intelligent devices and systems being deployed. New deployments of utility-owned assets include self-healing systems, microgrids, and distribution automation. Non-utility-owned assets include solar photovoltaic generation, behind-the-meter energy storage systems, and electric vehicles. While these deployments provide potential data and control points, the existing centralized control architectures do not have the flexibility or the scalability to integrate the increasing number or variety of devices. The communication bandwidth, latency, and the scalability of a centralized control architecture limit the ability of these new devices and systems from being engaged as active resources. This paper presents a standards-based architecture for the distributed power system controls, which increases operational flexibility by coordinating centralized and distributed control systems. The system actively engages utility and non-utility assets using a distributed architecture to increase reliability during normal operations and resiliency during extreme events. Results from laboratory testing and preliminary field implementations, as well as the details of an ongoing full-scale implementation at Duke Energy, are presented.
机译:世界各地的电配电系统正在看到越来越多的公用事业拥有和非公用事业资产(客户拥有的)智能设备和部署系统。公用事业资产的新部署包括自我修复系统,微电网和分销自动化。非公用事业资产包括太阳能光伏发电,米后面的储能系统和电动车辆。虽然这些部署提供了潜在的数据和控制点,但是现有的集中控制架构没有灵活性或可伸缩性来集成越来越多的设备。集中控制架构的通信带宽,延迟和可扩展性限制了这些新设备和系统从作为活动资源开始的能力。本文提出了一种基于标准的分布式电力系统控制的架构,其通过协调集中式和分布式控制系统来增加操作灵活性。该系统使用分布式架构主动地与实用程序和非实用性资产接合,以在极端事件期间在正常操作和弹性期间提高可靠性。提出了实验室测试和初步现场实现的结果,以及Duke Energy的持续全面实施的细节。

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