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基于机器学习的双反时限方向过流继电器自适应整定方法以提升微电网稳定运行
Machine-Learning-Based Adaptive Settings of Directional Overcurrent Relays With Double-Inverse Characteristics for Stable Operation of Microgrids
| 作者 | Ahmed N. Sheta · Bishoy E. Sedhom · Anamitra Pal · Mohamed Shawky El Moursi · Abdelfattah A. Eladl |
| 期刊 | IEEE Transactions on Industrial Informatics |
| 出版日期 | 2024年9月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 GaN器件 工商业光伏 微电网 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 微电网 方向过流继电器 自适应设置 稳定性约束 遗传算法 |
语言:
中文摘要
含分布式能源的微电网在能效与可持续性方面优势显著,但给保护方案尤其是继电保护整定与配合带来挑战。本文研究方向过流继电器(DOCR)在微电网中的应用,针对分布式电源惯性弱及故障后DOCR动作时间过长可能引发的系统失稳问题,提出一种融合两条反时限曲线的新型整定方法,确保继电保护协调性与微电网稳定性。考虑到微电网多种运行拓扑下单一整定值的局限性,采用自组织映射将不同运行场景聚类匹配至有限的可调定值组,并利用遗传算法优化各场景下满足稳定性约束的自适应整定值,存储于继电器中按需激活。通过DigSILENT与MATLAB联合仿真验证了该方法在改进IEEE 33节点系统上的有效性。
English Abstract
Microgrids (MGs) with distributed energy resources (DERs) provide significant benefits in terms of energy efficiency and sustainability. However, they bring challenges to protection schemes, particularly relay settings and coordination. This article investigates the deployment of directional overcurrent relays (DOCRs) in MGs. Given the limited inertia of DERs and the potential instability resulting from extended DOCR operating times postfault, a novel DOCR setting is proposed. This setting uses shifted user-defined characteristics that integrate two inverse curves to ensure relay coordination and MG stability. Meanwhile, recognizing that MGs can operate in various topologies, a single DOCR setting may prove ineffective for many scenarios. Therefore, this article configures DOCRs with adaptive settings to manage diverse operating conditions. Due to the limited number of settings supported by commercial DOCRs, a self-organizing map is used to categorize MG potential scenarios into coherent groups aligned with available DOCR settings. The stability-constrained settings of each DOCR are optimized using the genetic algorithm and then stored within the relay for seamless activation when needed. The efficacy of the proposed approach is evaluated on a modified IEEE 33-bus system with synchronous and inverter-based DERs using DigSILENT and MATLAB.
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SunView 深度解读
该双反时限自适应保护技术对阳光电源PowerTitan储能系统及微电网ESS集成方案具有重要应用价值。针对ST系列储能变流器接入微电网后因弱惯性导致的保护配合难题,可将机器学习聚类算法与遗传算法优化整定值的方法集成至iSolarCloud云平台,实现多场景拓扑下的保护定值自适应切换。该技术可增强构网型GFM控制模式下的系统稳定性,缩短故障切除时间,避免因保护延时导致的储能系统脱网。建议在工商业光伏+储能项目中验证该方法,优化保护协调逻辑,提升微电网供电可靠性与设备安全性。