Design, Sizing and Optimization of a Solar- Wind Hybrid Power System

U. V. Akpan, A. Edeoja, J. Ibrahim, Karl Aondona Kwaghger
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引用次数: 1

Abstract

Design, sizing and optimization of a solar-wind hybrid power system was carried out to determine its economic feasibility using Hybrid optimized model for electric renewable (HOMER) software aimed at selecting the most feasible configuration based on the net present cost to meet the load demand of 425 W for the appliances in a departmental office at Joseph Sarwuan Tarka University, Makurdi. The simulation results were used to develop a working prototype by sizing the four major components: the solar panels (350 W), a wind turbine (100 W), 2 battery systems of 12 V/200Ah and a charge controller (35.4 A) to regulate battery charging. The efficiencies of the wind turbine, PV solar panels and the inverter system were 48, 29.2 and 50 % respectively. The contribution of PV was 98 % and that of the wind turbine was 2 % due to low average wind speed (1.96 m/s at 15 m) from February to April. The results showed that solar energy contributed more to the charging of the inverter than the wind energy due to the high favorable solar insolation in the region. The optimized system configuration was chosen and this was based on the net present cost, levelized cost of energy and its renewable fraction respectively. The results demonstrated that the best hybrid combination consists of 0.35 kW PV Panels, 1 unit of 0.1 kW wind turbine, 2 units of deep cycle batteries (12V each/200Ah) and 1 unit of 1600 W Inverter. The prototype of the solar - wind hybrid power system based on the optimized components met the load demand for the basic appliances in the office. The results can be expanded to cover the entire department and the templates so obtained can be used generally within the University Community.
太阳能-风能混合动力系统的设计、选型与优化
在马库尔迪Joseph Sarwuan Tarka大学某院系办公室,利用可再生电力混合优化模型(HOMER)软件对太阳能-风能混合发电系统进行了设计、规模和优化,以确定其经济可行性,旨在根据净当前成本选择最可行的配置,以满足设备425 W的负荷需求。仿真结果用于开发工作原型,通过确定四个主要部件的尺寸:太阳能电池板(350 W),风力涡轮机(100 W), 2个12 V/200Ah的电池系统和一个充电控制器(35.4 a)来调节电池充电。风力发电机、光伏太阳能电池板和逆变器系统的效率分别为48%、29.2%和50%。由于2 - 4月平均风速较低(15 m时平均风速为1.96 m/s),光伏发电的贡献率为98%,风力发电的贡献率为2%。结果表明,由于该地区日照有利度较高,太阳能对逆变器充电的贡献大于风能。根据净现值成本、能源平准化成本和可再生能源比例分别选择了优化后的系统配置。结果表明,最佳混合组合由0.35 kW光伏板、1台0.1 kW风力发电机组、2台深循环电池(每台12V /200Ah)和1台1600 W逆变器组成。优化后的组件样机满足了办公室基本电器的负荷需求。结果可以扩展到整个部门,所获得的模板可以在大学社区中普遍使用。
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