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Relay protection in active distribution networks

机译:有源配电网中的继电保护

摘要

Increasingly growing share of distributed generation in the whole electrical power system’s generating system is currently a worldwide tendency, driven by several factors, encircling mainly difficulties in refinement of megalopolises’ distribution networks and its maintenance; widening environmental concerns adding to both energy efficiency approaches and installation of renewable sources based generation, inherently distributed; increased power quality and reliability needs; progress in IT field, making implementable harmonization of needs and interests of different-energy-type generators and consumers. At this stage, the volume, formed by system-interconnected distributed generation facilities, have reached the level of causing broad impact toward system operation under emergency and post-emergency conditions in several EU countries, thus previously implementable approach of their preliminary tripping in case of a fault, preventing generating equipment damage and disoperation of relay protection and automation, is not applicable any more. Adding to the preceding, withstand capability and transient electromechanical stability of generating technologies, interconnecting in proximity of load nodes, enhanced significantly since the moment Low Voltage Ride-Through regulations, followed by techniques, were introduced in Grid Codes. Both aspects leads to relay protection and auto-reclosing operation in presence of distributed generation generally connected after grid planning and construction phases. This paper proposes solutions to the emerging need to ensure correct operation of the equipment in question with least possible grid refinements, distinctively for every type of distributed generation technology achieved its technical maturity to date and network’s protection. New generating technologies are equivalented from the perspective of representation in calculation of initial steady-state short-circuit current used to dimension current-sensing relay protection, and widely adopted short-circuit calculation practices, as IEC 60909 and VDE 0102. The phenomenon of unintentional islanding, influencing auto-reclosing, is addressed, and protection schemes used to eliminate an sustained island are listed and characterized by reliability and implementation related factors, whereas also forming a crucial aspect of realization of the proposed protection operation relieving measures.
机译:在多种因素的驱使下,分布式发电在整个电力系统的发电系统中所占份额的日益增长是目前的全球趋势,主要是围绕在特大城市的配电网及其维护方面的困难进行的。越来越多的环境问题增加了能源效率方法和固有分布的可再生能源发电的安装;更高的电能质量和可靠性需求;在IT领域取得进步,使不同能源类型的发电机和消费者的需求和利益实现可实现的协调。在现阶段,由多个系统互连的分布式发电设施组成的容量已达到在几个欧盟国家中对紧急情况和紧急情况下的系统运行产生广泛影响的水平,因此,在出现以下情况时,可以采取初步可行的方法进行初步跳闸防止发电机设备损坏以及继电保护和自动化装置失灵的故障不再适用。此外,自从电网规则中引入低电压穿越法规和技术之后,发电技术的承受能力和瞬态机电稳定性,负载节点附近的互连得到了显着提高。在分布式发电的情况下,这两个方面都导致继电保护和自动重合闸操作,通常在电网规划和建设阶段之后将其连接起来。本文针对不断出现的需求提出了解决方案,以确保所讨论的设备正确运行并尽可能少地优化电网,特别是对于每种类型的分布式发电技术,迄今为止都已达到其技术成熟度并获得了网络的保护。从表示的角度来看,新一代发电技术等同于用于确定电流感应继电器保护尺寸的初始稳态短路电流的计算方式,并被广泛采用的短路计算方法如IEC 60909和VDE 0102。解决了影响自动重合闸的孤岛问题,并列出了用于消除持续孤岛的保护方案,并通过可靠性和与实施相关的因素对它们进行了表征,同时也构成了实现所提出的保护措施的重要措施。

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  • 作者

    Muzalev Sergei;

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  • 年度 2016
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