Predictive DC Fault Ride-Through for Offshore MMC-Based MT-HVDC Grid

IF 3.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Ajay Shetgaonkar;Vaibhav Nougain;Marjan Popov;Peter Palensky;Aleksandra Lekić
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引用次数: 0

Abstract

Unscheduled event handling capability and swift recovery from transient events are indispensable study areas to ensure reliability in offshore multiterminal high-voltage dc (MT-HVdc) grids. This article focuses on enhancing the reliability of half-bridge modular multilevel converters (HB-MMCs) in MT-HVdc grids by introducing a predictive dc fault ride-through (DC-FRT) recovery controller and fault separation devices. A novel dc protection-informed zonal DC-FRT scheme for HB-MMCs is proposed, incorporating a model predictive planner for optimized control inputs based on local and interstation measurements and converter constraints. A real-time digital simulator environment simulates the approach, which improves lower level control during fault interruption and suppression by utilizing fault detection and location information. In addition, the study examines two control schemes to assess the impact of communication delays in MT-HVdc grids, a critical factor for system stability and reliability during faults. These schemes include a centralized scheme with delays in input and output signals and a decentralized approach focusing on external signal delays. Both are compared against a baseline centralized control with no delays. These approaches explore alternatives for the placement of the proposed controller, considering potential delays in interstation high-speed communication. The findings underscore the significance of the proposed DC-FRT control in reinforcing MT-HVdc systems against faults, which contributes to efficient recovery and grid stability.
基于mmc的海上MT-HVDC电网预测直流故障穿越
海上多终端高压直流(MT-HVdc)电网的可靠性研究离不开非计划事件处理能力和瞬态事件的快速恢复。本文主要通过引入预测直流故障穿越(dc - frt)恢复控制器和故障分离装置来提高MT-HVdc电网中半桥模块化多电平变换器(HB-MMCs)的可靠性。提出了一种新的基于直流保护的hb - mmc分区dc - frt方案,该方案结合了基于局域和站间测量以及变换器约束的模型预测规划器来优化控制输入。一个实时数字模拟器环境模拟了该方法,该方法利用故障检测和定位信息提高了故障中断和抑制期间的低级控制。此外,研究考察了两种控制方案,以评估MT-HVdc电网中通信延迟的影响,通信延迟是故障期间系统稳定性和可靠性的关键因素。这些方案包括输入和输出信号延迟的集中式方案和专注于外部信号延迟的分散方法。两者都与没有延迟的基线集中控制进行比较。考虑到站间高速通信的潜在延迟,这些方法探索了拟议控制器放置的替代方案。研究结果强调了所提出的DC-FRT控制在加强MT-HVdc系统抗故障方面的重要性,这有助于有效恢复和电网稳定。
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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CiteScore
13.50
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