Cost-Effective and Retrofit Solution Control Algorithm of Renewable Fed DC Microgrid System

B. R, Susan Thambi, K. P.
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Abstract

DC microgrids (MG) provide efficient integration of renewable resources, storage capabilities, and load distribution into the electric power system, which makes them superior to AC MGs. Different power sources such as wind turbines, distributed energy resources (DER), photovoltaic (PV), and battery energy storage systems are considered to supply the load demand. In the present environment, when enormous amounts of renewable energy are being injected into the electrical system oscillations caused by load or source transients and energy management should be ministered appropriately, as per global standards. Supercapacitors are efficient energy storage devices that can function as ESS in a droop-regulated DC microgrid in order to compensate for the ups and downs in the DC bus voltage brought on by the load demand and DER integrations. The control schemes, droop control, master-slave control, and other distributed and hierarchical control techniques, have several advantages and disadvantages with regard to cost-effectiveness, complexity, and resilience. A novel microgrid control technique is proposed as part of this work, where a piecewise droop control mechanism is introduced in order to utilize the surge power handling capability of supercapacitors to address the aforementioned voltage swings. The proposed method is evolved by combining features of the conventional droop method and the DC bus signaling mechanism. Simulation studies performed with the proposed control indicate predominant improvement in the system characteristics, whose results are presented in the later sections.
可再生馈流直流微电网系统的成本效益与改造方案控制算法
直流微电网(MG)提供了可再生资源、存储能力和负载分配到电力系统中的有效整合,这使它们优于交流微电网。不同的电源,如风力涡轮机,分布式能源(DER),光伏(PV)和电池储能系统被认为可以满足负载需求。在当前环境下,当大量可再生能源被注入电力系统时,应按照全球标准对负荷或电源暂态引起的振荡和能源管理进行适当的管理。超级电容器是一种高效的储能装置,可以在直流微电网中充当ESS,以补偿负载需求和DER集成引起的直流母线电压的起伏。下垂控制、主从控制和其他分布式和分层控制技术等控制方案在成本效益、复杂性和弹性方面具有若干优点和缺点。作为这项工作的一部分,提出了一种新的微电网控制技术,其中引入了分段下垂控制机制,以利用超级电容器的浪涌功率处理能力来解决上述电压波动。该方法结合了传统下垂方法的特点和直流母线信令机制进行了改进。采用所提出的控制方法进行的仿真研究表明,系统特性得到了显著改善,其结果将在后面的章节中介绍。
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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