恒温控制负荷在电力系统频率管理中的作用:综述

IF 5.6 2区 工程技术 Q2 ENERGY & FUELS
Sumit Nema , Vivek Prakash , Hrvoje Pandžić
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引用次数: 0

摘要

恒温控制负载(tcl)作为分散式储能系统(ESS)运行,具有根据电网频率波动调整其用电量的能力。它们为解决惯性下降问题提供了可行的解决方案,并可用于提供快速频率响应(FFR)。这篇综述文章广泛地研究了最近在电力系统中由tcl控制电网频率的文献中发展起来的控制策略。有必要创建快速频率控制(FFC)机制,优化tcl的利用,以应对此类系统中的具体挑战和机遇。这篇综述论文对FFR的研究现状进行了全面的审查,特别侧重于为整合tcl而提出的控制方案、策略和方法。此外,它还调查了学术著作中讨论的各种控制器和技术。通过识别这些策略、机制和控制器的优势和局限性,本综述为包含tcl的电力系统频率控制机制的设计和优化提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of thermostatically controlled loads in power system frequency management: A comprehensive review
Thermostatically Controlled Loads (TCLs) operate as decentralized Energy Storage Systems (ESS) that have the ability to adapt their power usage in accordance with fluctuations of the grid frequency. They offer a viable solution for addressing the decline in inertia and can be utilized to provide Fast Frequency Response (FFR). This review paper extensively examines control strategies developed in the recent literature on grid frequency control from TCLs in power systems. There is a need to create Fast Frequency Control (FFC) mechanisms that optimize the utilization of TCLs to address the specific challenges and opportunities in such systems. This review paper provides a thorough audit on the current state of research in the FFR, specifically focusing on control schemes, strategies and methodologies proposed for integrating TCLs. Additionally, it investigates the diverse controllers and techniques discussed in academic works. By identifying the strengths and limitations of these strategies, mechanisms, and controllers, this review provides insights into the design and optimization of the frequency control mechanisms for power systems that incorporate TCLs.
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来源期刊
Sustainable Energy Grids & Networks
Sustainable Energy Grids & Networks Energy-Energy Engineering and Power Technology
CiteScore
7.90
自引率
13.00%
发文量
206
审稿时长
49 days
期刊介绍: Sustainable Energy, Grids and Networks (SEGAN)is an international peer-reviewed publication for theoretical and applied research dealing with energy, information grids and power networks, including smart grids from super to micro grid scales. SEGAN welcomes papers describing fundamental advances in mathematical, statistical or computational methods with application to power and energy systems, as well as papers on applications, computation and modeling in the areas of electrical and energy systems with coupled information and communication technologies.
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