系统强度和直流控制策略对距离保护性能的影响

Di Liu, Q. Hong, A. Dyśko, D. Tzelepis, Guangya Yang, C. Booth, I. Cowan, B. Ponnalagan
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引用次数: 1

摘要

本文对降低系统强度和不同控制策略对高压直流系统距离保护性能的影响进行了全面的研究和试验。为了对系统中使用的物理继电器进行真实测试,建立了硬件在环(HIL)测试装置,通过模拟放大器将模拟的电压和电流波形注入距离保护继电器,并将继电器跳闸信号反馈给仿真并记录下来,用于保护性能分析。在RTDS仿真中,利用RSCAD开发了一个简化但具有代表性的输电网络模型,该模型包括基于模块化多电平变换器(MMC)的HVDC系统、同步冷凝器(SC)和代表非同步发电(NSG)的两电平变换器。该模型可以灵活配置,以反映不同水平的系统强度和同步补偿在高压直流现场应用。高压直流系统采用灵活的控制器,可以在故障时复制常用的控制策略(例如,平衡电流模式消除负序电流,恒定有功和无功模式分别抑制有功和无功的振荡),允许用户注入不同水平的负序电流。研究发现,随着系统强度的降低,直流系统对距离保护的影响变得明显,即延时运行会影响保护性能,而这种影响在一定程度上取决于直流系统所采用的控制策略。还观察到,SC的安装可以促进保护响应,而这种支持取决于SC的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IMPACT OF SYSTEM STRENGTH AND HVDC CONTROL STRATEGIES ON DISTANCE PROTECTION PERFORMANCE
This paper presents comprehensive studies and tests for evaluating the impact of reduced system strength and different control strategies used by HVDC systems on the performance of distance protection. A Hardware-In-the-Loop (HIL) test setup is established to enable realistic testing of physical relays being used in the system, where simulated voltage and current waveforms are injected into the distance protection relay via an analogue amplifier, and the relay tripping signal is fed back to simulation and recorded for protection performance analysis. In the simulation, a reduced but representative transmission network model, which includes a Modular Multilevel Converter (MMC) based HVDC system, a synchronous condenser (SC), and a two-level converter representing non-synchronous generation (NSG), is developed in RSCAD for the RTDS simulator. The model can be flexibly configured to reflect different levels of system strength and synchronous compensation applied at the HVDC site. The HVDC system is implemented with a flexible controller, which can replicate typically used control strategies during faults (e.g. balanced current mode to eliminate negative sequence current, and constant active and reactive power modes to suppress the oscillations on the active and reactive power respectively), allowing the user to inject different levels of negative sequence current. From the studies, it was found that with decreased system strength, the impact of the HVDC system on the distance protection becomes apparent, i.e. protection performance could be compromised with delayed operation, and such impact, to some extent, is subject to the control strategies applied in the HVDC system. It was also observed that the installation of SC could facilitate the protection response, and such support is dependent on the SC capacity.
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