介绍了基于信息通信技术的微电网频率控制新策略

Iman Khoshian, M. Mashhadi, Younes Khoshian
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引用次数: 0

摘要

智能电网被称为当前电力系统的未来,可以实现双向信息和潮流的使用。如果不利用信息和通信技术(ict),就不可能实施需求响应(DR)计划,并在智能电网中集成具有V2G功能的电动汽车。信通技术可以发挥作用的领域之一是初级频率控制(PFC)。由于可再生能源的间歇性发电,微电网的频率控制是一项具有挑战性的任务。这些可再生资源,如风能和太阳能,在发电中引入了很多不确定性。因此,利用新的主储备资源和新的频率控制策略是必不可少的。本文提出了一种新的变频调速策略。该策略结合了快速斜坡速率能力和需求响应,以改善mg中的主频率控制。不同情况下的仿真结果表明,该策略能够较好地覆盖可再生能源发电的不确定性。研究了电动汽车电池储能在一次频率控制中的影响。结果表明,在可再生能源发电普及率较高的情况下,利用电动汽车电池的能量,可以在任何条件下控制频率。因此,可再生能源在微电网中的最大渗透极限提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Introducing new ICT- based frequency control strategy in microgrids
Smart grids known as future of current power systems enable usage of two way information and power flow. Implementing demand response (DR) programs and integrating electric vehicles with V2G capability in smart grids are not possible without taking advantage of information and communication technologies (ICTs). One of the areas that ICTs can be helpful is primary frequency control (PFC). Frequency control in microgrids (MGs) due to intermittent generation of renewable resources is a challenging task. These renewable resources like wind and solar energies introduce lots of uncertainties in generation. Thus, utilizing new resources of primary reserve and new frequency control strategies in MGs is essential. In this paper, a novel strategy for primary frequency control in MGs is presented. This strategy combines fast ramp rate capability and demand response for improving primary frequency control in MGs. Simulation results in different situations show that the proposed strategy covers renewable generation uncertainties properly. The impacts of using energy stored in batteries of electric vehicles (EVs) in primary frequency control also studied. It is indicated that in high penetration of renewable generation, by using energy of EV batteries, frequency can be controlled in any condition. Therefore, maximum penetration limit of renewables in microgrid increase.
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