Fast Fault-Tolerant Grid Frequency Measurement

IF 3.3 Q3 ENERGY & FUELS IEEE Open Access Journal of Power and Energy Pub Date : 2024-08-05 DOI:10.1109/OAJPE.2024.3438153
Chris Wembridge;Mark Davies;James Lord;Evan Franklin;Sarah Lyden;Michael Negnevitsky
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Abstract

As power systems adopt greater levels of asynchronous generation, operators increasingly need to accurately monitor and manage their systems. With inverter-based generation progressively displacing traditional synchronous generators, power systems generally experience increased rate of change of grid frequency and wider propagation of voltage disturbances after a network contingency event. Inverter-based resources are now being leveraged to mitigate larger frequency disturbances, by delivering fast frequency control ancillary services. For this to be effective, accurate and robust, fast and fault-tolerant grid frequency measurements are needed. Commonly deployed frequency measurement techniques are susceptible to significant measurement error when exposed to unbalanced faults and frequency deviations. More robust techniques for measuring frequency are thus needed. This paper describes in detail a measurement strategy that extracts the continuous phase angle of the positive phase sequence phasor, from voltage signals. The method is demonstrated to provide robust measurements in the presence of simultaneously and rapidly varying voltage and frequency. From real-world measurements, using the Tasmanian power system as a case-study, the method is shown to be equivalent to or outperform measurement devices currently deployed in power systems. This paper provides all necessary control block diagrams required for integration into various modelling packages and frequency measurement devices.
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快速容错电网频率测量
随着电力系统采用更多的异步发电,运营商越来越需要对系统进行精确监控和管理。随着逆变器发电逐步取代传统的同步发电机,电力系统通常会经历电网频率变化率增加和网络突发事件后电压扰动传播范围扩大的情况。通过提供快速频率控制辅助服务,目前正在利用逆变器资源来缓解更大的频率干扰。要做到这一点,就需要进行准确、稳健、快速和容错的电网频率测量。常用的频率测量技术在遇到不平衡故障和频率偏差时,容易产生明显的测量误差。因此,需要更稳健的频率测量技术。本文详细介绍了一种从电压信号中提取正相序相位连续相角的测量策略。实验证明,在电压和频率同时快速变化的情况下,该方法能够提供稳健的测量。以塔斯马尼亚电力系统为案例进行的实际测量表明,该方法等同于或优于目前部署在电力系统中的测量设备。本文提供了集成到各种建模软件包和频率测量设备所需的全部控制框图。
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来源期刊
CiteScore
7.80
自引率
5.30%
发文量
45
审稿时长
10 weeks
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