Modeling and Management of Hybrid System Photovoltaic-FC-Ultracapacitors Power Systems

H. A. Issa, Layth Mohammed Abd Ali, M. N. Al-Maliki, B. Yakimovich, V. Kuvshinov
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Abstract

This study shows an improved DC microgrid power management technique. The value of utilizing renewable energy has long been debatable, and this article suggests a typical DC microgrid because of the advantages it has over AC technology. A solar cell (PV), fuel cell (FC) and storage component - an ultracapacitor (UC)-make up the standard microgrid. The most important goal of the paper is to optimize the management strategy for the bus voltage with arranged power-sharing between these types of renewable energy that are used here. For variable solar irradiance and various loading conditions, the proposed management seeks to deliver high-quality energy to the load while taking into consideration the FC state. The ultracapacitor was prepared to furnish the transient period due to the FC's slow dynamics. To maintain the DC bus voltage steady in the face of load variations, a management algorithm is put into practice. To generate the references, the management controller relies on a differential flatness method. The electricity from the ultracapacitor controls the DC bus. Earlier studies showed that the circuit of the fuel cell was integrated with a standalone photovoltaic system and discovered that the fuel cell doesn't have the same properties. In the current research, observations were made on power quality elements like voltage, current, and power for energy storage systems. With several self-definition elements of the photovoltaic, fuel cell, and ultracapacitor, along with their parameters, simulation is used as the study method medium. The outcome demonstrates that since the ultracapacitor serves as the primary storage, the fuel cell integration has little impact on it, and only small changes in voltage and current were observed. Due to the fuel cell integration characteristic of providing the system a major perturbation, most perturbation from the system had been absorbed while in an ultracapacitor
光伏-FC-超级电容器混合系统的建模与管理
本研究展示了一种改进的直流微电网电源管理技术。利用可再生能源的价值长期以来一直备受争议,本文建议采用典型的直流微电网,因为它比交流技术更具优势。太阳能电池 (PV)、燃料电池 (FC) 和储能元件 - 超级电容器 (UC) - 构成了标准的微电网。本文最重要的目标是优化母线电压的管理策略,并在这些可再生能源之间安排功率共享。对于可变的太阳能辐照度和各种负载条件,所提出的管理策略旨在向负载提供高质量的能源,同时考虑到 FC 状态。由于 FC 的动态速度较慢,因此准备了超级电容器来提供瞬态期间的能量。为了在负载变化时保持直流母线电压稳定,我们采用了一种管理算法。为了生成参考值,管理控制器采用了差分平坦法。来自超级电容器的电力控制着直流母线。早期的研究表明,将燃料电池的电路与独立的光伏系统集成后,发现燃料电池并不具备相同的特性。在当前的研究中,对储能系统的电压、电流和功率等电能质量要素进行了观察。利用光伏、燃料电池和超级电容器的几个自定义元素及其参数,将模拟作为研究方法的媒介。结果表明,由于超级电容器是主要的存储设备,因此燃料电池的集成对其影响不大,仅观察到电压和电流的微小变化。由于燃料电池集成的特点是为系统提供主要扰动,因此系统的大部分扰动已被吸收,而超级电容器的扰动则被吸收。
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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