A FLEXIBLE REAL TIME NETWORK MODEL FOR EVALUATING HVDC SYSTEMS' IMPACT ON AC PROTECTION PERFORMANCE

D. Liu, Q. Hong, A. Dyśko, A. Egea Àlvarez, L. Xu, C. Booth, I. Cowan, B. Ponnalagan
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引用次数: 3

Abstract

This paper presents a reduced but reprehensive real time network model constructed in RSCAD for RTDS to evaluate the impact of HVDC systems and Non-Synchronous Generation (NSG) on the protection performance in the AC grid. The proposed network model could be flexibly configured to evaluate key factors that could affect the protection performance, including the level of system strength, different control strategies adopted in the HVDC system, different levels of synchronous compensation installed at the HVDC site, etc. The developed network model contains a Modular Multilevel Converter (MMC)-based HVDC system, a NSG unit representing the converter-interfaced generation and a Synchronous Condenser (SC) representing the level of synchronous compensation. A flexible controller is designed for the HVDC system to realise various typically used control strategies, including balanced current control, constant active power control and constant reactive power control, and inject a desired level of the negative sequence current as required. The NSG employs the widely-adopted PQ control strategy. Three typical controllers, comprising the Automatic Voltage Regulator (AVR), constant reactive power and droop controller, are implemented for the SC to realistically emulate the SC behaviour under different control modes. Case studies on the application of the model for testing distance protection performance are presented. The developed model is suitable for both pure simulation-based studies and also hardware-in-the-loop test when connected to an external physical relay, thus providing an ideal testing platform for identifying the potential critical protection issues and the potential solutions in future power networks with high penetration of renewables.
一种评估高压直流系统对交流保护性能影响的灵活实时网络模型
本文提出了一种基于RSCAD的RTDS简化而全面的实时网络模型,用于评估高压直流系统和非同步发电(NSG)对交流电网保护性能的影响。所提出的网络模型可以灵活配置,以评估影响保护性能的关键因素,包括系统强度水平、高压直流系统采用的不同控制策略、高压直流站点安装的不同同步补偿水平等。所开发的网络模型包括一个基于模块化多电平变流器(MMC)的高压直流系统,一个代表变流器接口发电的NSG单元和一个代表同步补偿水平的同步冷凝器(SC)。针对高压直流系统设计了一种灵活的控制器,实现各种常用的控制策略,包括平衡电流控制、恒有功控制和恒无功控制,并根据需要注入所需的负序电流。核供应国集团采用了广泛采用的PQ控制策略。采用三种典型的控制器,包括自动电压调节器(AVR)、恒无功和下垂控制器,以真实地模拟SC在不同控制模式下的行为。最后给出了该模型在距离保护性能测试中的应用实例。所开发的模型既适用于纯仿真研究,也适用于连接外部物理继电器时的硬件在环测试,从而为识别未来可再生能源高渗透率电网中潜在的关键保护问题和潜在解决方案提供了理想的测试平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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