Design and simulation of an effective backup power supply for academic institutions in Nigeria: A case study of NDA postgraduate school

Abel E. Airobaman, S. T. Apeh, Usman A. Sanusi
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引用次数: 2

Abstract

This research work is aimed to mitigate the adverse effect of numerous portable generators used in academic environments due to the unstable power supply experienced in Nigeria. Data for the study on the existing backup, availability hours from the national grid, and load demand for the area of study were obtained from the residents of the campus, facility managers, and Kaduna Distribution Company as the grid supplier from August 2017 to December 2020. The average load of the campus was obtained to be 80kW. These were used as a baseline to obtain the required size and quantity of material to generate the backup power needed. A total ampere-hour requirement of the battery to be used was obtained to be 4,278.07Ah considering the average battery depth of discharge of 80%. This resulted in a total number of cells required to be 134 considering a battery with a 200Ah rating and a nominal voltage rating of 48V. A solar photovoltaic (PV) system rating of 166.4kW is required to sufficiently charge the battery bank and also serve the load. This amounts to a minimum of 5 panels per string connected in series and 34 number panels per string connected in parallel based on which the total number of panels required summed up to 666. The inverter rating for the load was obtained to be 150 kVA with a total load of 100 kVA, an efficiency of 80%, and an average future expansion of 20 %. A diesel generator rating of 100kVA with a starting kVA rating of 113.64kVA is required to efficiently serve the load considering future expansion of 1.1 and operating efficiency of 80 %. These obtained parameters were simulated using MATLAB/Simulink to test the feasibility of the backup systems. The generation cost of each backup was calculated based on which solar PV with battery bank has an initial energy generation cost of 81.9 ₦/kWh and a future energy generation cost of 0.27 ₦/kWh while diesel generator has an initial energy generation cost of 1602.04 ₦/kWh and a future energy generation cost of 8.07 ₦/kWh as such, PV has the least energy cost and more economical for the academic environment.
尼日利亚学术机构有效备用电源的设计与仿真——以NDA研究生院为例
这项研究工作旨在减轻由于尼日利亚电力供应不稳定而在学术环境中使用的众多便携式发电机的不利影响。2017年8月至2020年12月,从校园居民、设施管理人员和作为电网供应商的卡杜纳配电公司获得了研究区域现有备用、国家电网可用小时数和负载需求的研究数据。校园的平均负荷为80kW。这些被用作获得所需材料的尺寸和数量的基线,以产生所需的备用电源。考虑到电池平均放电深度为80%,得到待用电池的总安培小时需求量为4278.07 ah。考虑到额定电压为200Ah,额定电压为48V的电池,这导致所需的电池总数为134个。需要一个额定功率为166.4kW的太阳能光伏(PV)系统来为电池组充分充电并为负载服务。这相当于每串串联连接至少5个面板,每串并联连接至少34个数字面板,基于此,所需面板总数总计为666个。逆变器额定负载为150kva,总负载为100kva,效率为80%,平均未来扩展为20%。考虑未来扩容1.1,运行效率80%,需要一台额定功率为100kVA,起始额定千伏安为113.64kVA的柴油发电机有效服务负荷。利用MATLAB/Simulink对得到的参数进行了仿真,验证了备用系统的可行性。每个备用电源的发电成本是基于太阳能光伏电池的初始发电成本为81.9奈拉/千瓦时,未来的发电成本为0.27奈拉/千瓦时,而柴油发电机的初始发电成本为1602.04奈拉/千瓦时,未来的发电成本为8.07奈拉/千瓦时,因此,光伏发电的能源成本最低,对学术环境更经济。
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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