基于ROCOV和ROCOC的多端直流系统故障检测

M. J. Pérez Molina, Dunixe Marene Larruskain Escobal, P. López, Victor Valverde Santiago
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引用次数: 2

摘要

基于通信的故障检测算法受通信时延的限制,不适用于长距离传输,因此基于局部测量的故障检测算法多用于高压直流系统的故障检测。提出了一种基于局部测量的多端子直流系统保护系统。主保护基于电压变化率(ROCOV)算法,备份和母线保护基于电流变化率(ROCOC)算法。在PSCAD软件中进行了仿真,验证了这些算法的性能。该系统在不同的故障情况下进行了验证,包括低电阻和高电阻故障情况。ROCOV算法为保护系统提供了针对低电阻和高电阻故障条件的快速、可靠和准确的初级保护。同时,为了在主保护失效的情况下运行,实现了ROCOC算法。它对低阻故障的操作与ROCOV性能相似,但对高阻故障条件的灵敏度较低。为了提高备份保护的灵敏度和可靠性,设计了过流特性。另一方面母线保护性能快速、准确、选择性强;不会误检链路故障。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fault detection based on ROCOV and ROCOC for multi-terminal HVDC systems
Local measurement based algorithms are mostly used for fault detection in HVDC systems since communication based algorithms are limited by the communication time delay and, therefore, they are not appropriate for long transmission distances. This paper proposes a local measurement based protection system for multi-terminal HVDC systems. Primary protection is based on rate of change of voltage (ROCOV) algorithm, while the backup and busbar protections are based on rate of change of current (ROCOC) algorithm. The performance of these algorithms is tested through simulation in PSCAD software. The proposed system is validated with different fault case scenarios, including low and high resistance fault conditions. The ROCOV algorithm provides the protection system of a fast, reliable and accurate primary protection against low and high resistance fault conditions. Meanwhile, the ROCOC algorithm is implemented in order to operate in case of primary protection failure. Its operation against low resistance faults is similar to the ROCOV performance, however, it presents low sensitivity to high resistance fault conditions. An overcurrent feature is implemented in order to improve the backup protection sensitivity and reliability. On the other hand, the busbar protection performance is fast, accurate and selective; it does not misdetect link faults.
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