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Enhancing frequency stability by integrating non-conventional power sources through multi-terminal HVDC grid

机译:通过多端子HVDC电网集成非常规电源来增强频率稳定性

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The 2050 targets established by the EU will foster both larger penetration of renewable energy, especially wind power, and more cross-border interconnections. Moreover, this new framework requires the non conventional power sources and power converter-based systems to be responsible for the duties traditionally carried out by conventional synchronous generators as frequency support. This paper presents how different power-electronic based technologies can provide frequency support individually and in a coordinated manner (with different priority given by the deadbands) ensuring a stable operation. The implemented scenarios examine challenging conditions, where the primary reserve of the interconnected conventional, renewable, and storage generation is fully utilized to tackle frequency incidents. This demonstrates how the joint regulation of the power electronic-based technologies enhances the frequency stability of the AC synchronous areas. The different control schemes and their interaction are investigated in Cigre DC grid benchmark adapted for frequency stability studies and implemented in Matlab/Simulink simulation tool. This modified grid includes 5-terminal HVDC grid with two offshore wind farms and three AC networks including battery and onshore wind farms. (C) 2017 Elsevier Ltd. All rights reserved.
机译:欧盟制定的2050年目标将促进可再生能源(尤其是风能)的更大渗透,以及更多的跨境互连。而且,这种新框架要求非常规电源和基于功率转换器的系统负责传统上由常规同步发电机作为频率支持而执行的工作。本文介绍了不同的基于电力电子的技术如何分别提供频率支持并以协调的方式(死区给定不同的优先级)提供频率支持,从而确保稳定的运行。已实施的方案检查了具有挑战性的条件,其中互连的常规,可再生和存储发电的主要储备被充分利用来应对频率事件。这证明了基于电力电子技术的联合监管如何增强交流同步区域的频率稳定性。在适合频率稳定性研究并在Matlab / Simulink仿真工具中实现的Cigre DC电网基准测试中研究了不同的控制方案及其相互作用。改进后的电网包括5端子HVDC电网,其中包括两个海上风电场和三个AC网络,包括电池和陆上风电场。 (C)2017 Elsevier Ltd.保留所有权利。

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