基于初波过程比较的lcc - mmc -特高压直流多端子高速主保护

IF 2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Iet Generation Transmission & Distribution Pub Date : 2024-10-16 DOI:10.1049/gtd2.13301
Yan Li, Jun Li, Guiyuan Li, Runbin Cao, Xinjie Zeng, Ning Tong
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引用次数: 0

摘要

多终端LCC- mmc - uhvdc已成为一项前沿技术,该技术在整流器侧采用LCC,在逆变器侧采用多个fhmc。然而,与传统直流电网相比,它们的保护要求存在明显差异,这对实现所需属性构成了显著的挑战。本文首先推导了不同故障条件下初始波的时域变化规律。利用外部故障场景下理论计算的反向电流行波变化率波形作为参考,提出了一种初始波过程比较接地的主保护继电器。这种方法利用了在内部断层中观察到的与理论波形的差异。为了减少因反向故障情况下使用非定向启动标准而导致的误操作,模拟理论波形的细微噪声模式被注入到实际波形中。这种方法避免了反向故障中的误操作,避免了与定向启动标准相关的额外延迟,从而提高了速度和安全性。案例研究表明,所提出的保护具有足够的选择性和600欧姆的电阻容限,速度为0.2 ms,满足800 kV特高压直流系统的要求。
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High-speed main protection for multiterminal LCC-MMC-UHVDC based on initial wave process comparison

The multiterminal LCC-MMC-UHVDC, which employs an LCC on the rectifier side and multiple FHMMCs on the inverter side, has emerged as a cutting-edge technology. Nevertheless, distinct disparities in their protection requirements compared to those of conventional DC grids pose notable challenges in attaining the desired attributes. This paper first derives variation patterns in the time domain of initial waves under different fault conditions. By utilizing the theoretically calculated rate-of-change waveform for the backward current traveling wave in an external fault scenario as a reference, a main protection relay grounded in initial wave process comparison is proposed. This approach capitalizes on the disparity observed in internal faults with the theoretical waveform. To mitigate maloperations stemming from the employment of a non-directional start-up criterion in reverse fault scenarios, subtle noise patterns, mimicking the theoretical waveforms, are infused into the actual waveforms. This approach averts maloperations in reverse faults and obviates the need for added delays associated with directional start-up criteria, thereby enhancing both speed and security. Case studies demonstrate that the proposed protection offers sufficient selectivity and a resistive tolerance of 600 ohms and boasts a speed of 0.2 ms, satisfying the requirements of 800 kV UHVDC systems.

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来源期刊
Iet Generation Transmission & Distribution
Iet Generation Transmission & Distribution 工程技术-工程:电子与电气
CiteScore
6.10
自引率
12.00%
发文量
301
审稿时长
5.4 months
期刊介绍: IET Generation, Transmission & Distribution is intended as a forum for the publication and discussion of current practice and future developments in electric power generation, transmission and distribution. Practical papers in which examples of good present practice can be described and disseminated are particularly sought. Papers of high technical merit relying on mathematical arguments and computation will be considered, but authors are asked to relegate, as far as possible, the details of analysis to an appendix. The scope of IET Generation, Transmission & Distribution includes the following: Design of transmission and distribution systems Operation and control of power generation Power system management, planning and economics Power system operation, protection and control Power system measurement and modelling Computer applications and computational intelligence in power flexible AC or DC transmission systems Special Issues. Current Call for papers: Next Generation of Synchrophasor-based Power System Monitoring, Operation and Control - https://digital-library.theiet.org/files/IET_GTD_CFP_NGSPSMOC.pdf
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