通过柔性技术的协调控制实现配电网可再生能源集成的可持续途径

IF 6.5 Q2 ENGINEERING, ENVIRONMENTAL
Mohana Alanazi
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引用次数: 0

摘要

分布式可再生能源(RESs)在配电网中的整合需要新的战略来解决可持续性和电网弹性需求。在这项工作中,提出了一种协调控制方法,该方法协同动态线路额定值(DLR)、软开点(sop)、有载分接开关(oltc)、电池储能系统(BESS)和需求响应(DR)来优化RES的使用。该优化问题用一个混合整数二阶锥规划(MISOCP)来表示,通过全局最优解来求解,以保证实际应用中的可扩展性和计算可追溯性。在33总线系统上模拟了系统运行的五种场景,逐步添加这些技术,以确定它们对RES渗透、电网依赖、电压稳定性和损耗的影响。关键结果表明,与静态电网相比,可再生能源利用率提高了19.8%,上游电网进口减少了18.6%。该系统在最大RES发电时段(7-12小时)与电网无关,并通过oltc调节控制和sop无功支持将电压剖面保持在工作极限(0.9-1.1 pu)。由于高优先级的可再生能源纳入,系统损失偶尔会在高可再生时段变得更高,因此DR和BESS的协调控制可将晚高峰输入减少29%。这项工作的成果强调了协同利用技术,使低碳、有弹性的配电网络成为现实,为公用事业公司向分散式能源系统发展提供了实际指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A sustainable approach to renewable integration in distribution grids through coordinated control of flexibility technologies
The integration of distributed renewable energy sources (RESs) in distribution networks demands new strategies to address sustainability and grid resilience needs. In this work, a coordinated control method that synergizes dynamic line rating (DLR), soft open points (SOPs), on-load tap changers (OLTCs), battery energy storage systems (BESS), and demand response (DR) is proposed to optimize RES use. The optimization problem is expressed in a mixed-integer second-order cone program (MISOCP) that is solved via global optimum solvers to allow scalability and computational tractability in actual applications. Five scenarios of system operation are simulated on a 33-bus system, progressively adding these technologies to determine their impact on RES penetration, grid reliance, voltage stability, and losses. The key results provide a 19.8 % improvement in utilization of renewable energy and a decrease in upstream grid importation of 18.6 % over static networks. The proposed system is grid independent during hours of maximum RES generation (hours 7–12) and keeps voltage profiles in working limits (0.9–1.1 pu) via OLTC-regulated control and SOP-reactive support. As losses in the system occasionally become higher during high-renewable hours due to high-priority RES inclusion, coordinated control of DR and BESS reduces evening peak importation by 29 %. The outcomes of this work underscore synergistic use of technologies in making low-carbon, resilient distribution networks a reality, providing practical guidance to utilities in moving towards decentralized energy systems.
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来源期刊
Cleaner Engineering and Technology
Cleaner Engineering and Technology Engineering-Engineering (miscellaneous)
CiteScore
9.80
自引率
0.00%
发文量
218
审稿时长
21 weeks
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