Design of optimal hybrid power system to provide reliable supply to rural areas of Ethiopia using MATLAB and Homer

Abraham Hizkiel Nebey
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引用次数: 12

Abstract

Integrating different energy resources, like solar PV, wind, and hydro is used to ensure reliable power to the rural community loads. Hybrid power system offers sufficient power supply for the rural villages by providing alternative supply for intermittent nature of renewable energy resource. Hence, intermittency of renewable energy resources is a challenge to electrify the rural community in a sustainable manner with the above sources. Thus, efficient resources management is a reasonable choice for intermittent renewable energy resources. The majority of rural villages in Ethiopia are suffering from lack of electricity. This causes deforestation, travel for long distance to fetch water, and no good social services, like clinic and schools, sufficiently. Therefore, the objective of this study was to maximize reliability of power supply by renewable energy sources. Data on wind speed and solar radiation are obtained from the NASA surface meteorological agency. While hydro data are obtained from physical measurements. Different configuration options are considered by Homer software to find the optimal configuration of hybrid system. The optimal configuration system is selected and hybrid components are sized. The optimal hybrid system consists of solar PV, wind, and hydro to supply a community load with a share of 13%, 52%, and 35% respectively. The fuzzy logic controller is designed to manage the intermittent nature of energies. Hence, the demand and energy sources are unpredictable; intelligent control system is important to manage the system accordingly. The control system is designed in MATALAB software. The result obtained from resource combination shows demand and supply are balanced. From the Twelve probabilistic combinations of demand and energy sources, one of the combinations shows that when 7.5 kW is demanded, the power generated/output from hybrid system is 10 kW which is greater than demand. To satisfy 7.5 kW demand control system takes 4.25 kW, 2.75 kW, and 1.08 kW share from wind, hydro, and solar sources respectively. The fuzzy logic control system is designed, to monitor the resource availability and load demand. This controller was managing the demand and the available resources according to the rule.
利用MATLAB和Homer对埃塞俄比亚农村可靠供电的最优混合电力系统进行设计
整合不同的能源资源,如太阳能光伏、风能和水力发电,以确保农村社区负荷的可靠供电。混合电力系统通过对可再生能源的间歇性提供替代供电,为农村提供充足的电力供应。因此,可再生能源的间歇性是一个挑战,以可持续的方式利用上述资源为农村社区供电。因此,高效的资源管理是间歇性可再生能源资源的合理选择。埃塞俄比亚的大多数农村正遭受缺电之苦。这导致了森林砍伐,长途跋涉取水,以及缺乏良好的社会服务,如诊所和学校。因此,本研究的目的是最大化可再生能源供电的可靠性。风速和太阳辐射的数据来自美国宇航局地面气象机构。而水力数据是通过物理测量获得的。荷马软件考虑了不同的配置选项,找到了混合动力系统的最优配置。选择了最优结构系统,并对混合部件进行了尺寸计算。最优的混合系统由太阳能光伏、风能和水电组成,分别以13%、52%和35%的份额提供社区负荷。模糊逻辑控制器的设计是为了管理能量的间歇性。因此,需求和能源是不可预测的;智能控制系统对系统的管理至关重要。控制系统在matlab软件中进行设计。资源组合的结果表明,需求与供给是平衡的。从需求和能源的12种概率组合来看,其中一种组合表明,当需求为7.5 kW时,混合动力系统产生/输出的功率大于需求10 kW。为满足7.5 kW的需求,控制系统分别从风能、水能和太阳能中获得4.25 kW、2.75 kW和1.08 kW的份额。设计了模糊逻辑控制系统,对资源可用性和负荷需求进行监控。该控制器根据规则对需求和可用资源进行管理。
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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