孟加拉国岛屿太阳能微电网系统评估,促进可持续能源获取

Farzana Akter, Kazi Ahasan Ekram, Md. Araful Hoque, Mohammad Joynal Abedin
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引用次数: 0

摘要

孟加拉湾北部的孤岛难以从中央电网获得电力,只能使用化石燃料发电机,这造成了健康风险、环境破坏和高昂的费用。因此,本研究旨在用太阳能光伏(SPV)微电网取代这些化石燃料电源,为偏远岛屿提供持续电力,并为减排做出贡献。考虑到土地可用性和易受侵蚀性,本研究选择了曼普拉岛上的一个特定地点安装 SPV 电站。利用一些著名的在线分析工具,如 "全球太阳能图集(GSA)"、"光伏地理信息系统(PVGIS)"等,分析了太阳能功率密度和其他技术参数,如直接正常辐照、全球水平辐照、漫射水平辐照、全球倾斜辐照、光伏(PV)模块的最佳倾斜角度、空气温度和地形高程。根据这些数据集,设计了一个使用单晶硅太阳能电池板的 10 千瓦地面光伏系统,用于离网运行。开发的系统每年可发电 14.808 兆瓦时。考虑到可持续发展目标(SDGs),对该设计的环境和社会影响进行了批判性分析。结果表明,与传统能源相比,10 千瓦微电网 SPV 系统可减少 284 吨二氧化碳排放。财务分析表明,根据发电量计算,投资回收期约为 8.8 年,这使得太阳能光伏微电网成为曼普拉岛等偏远地区的可行选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Assessment of Solar Micro-Grid System in the Islands of Bangladesh for Sustainable Energy Access
The isolated islands in the northern Bay of Bengal face difficulties accessing electricity from the central grid and use fossil fuel-based generators, which causes health risks, environmental damage, and high expenses. So, this study aims to replace these fossil fuel-based power sources with Solar Photovoltaic (SPV) microgrids to provide continuous power to remote islands and contribute to reducing emissions. A specific location on the island of Manpura is selected for the SPV plant installation, considering land availability and vulnerability to erosion. Solar power density and other technical parameters such as Direct Normal Irradiation, Global Horizontal Irradiation, Diffuse Horizontal Irradiation, Global Tilted Irradiation, the optimum tilt angle of Photovoltaic (PV) modules, air temperature, and terrain elevation are analyzed using some prominent online analytical tools named “Global Solar Atlas (GSA)”, “Photovoltaic Geographical Information System (PVGIS)” etc. Based on these datasets, a 10kW ground-mounted PV system using monocrystalline silicon solar panels is designed for off-grid operation. The developed system can generate 14.808 MWh of energy per year. This design’s environmental and social impacts are critically analyzed considering the Sustainable Development Goals (SDGs). Compared with conventional energy sources, the results show that the 10kW microgrid SPV system can reduce CO2 emissions by 284 tons. Financial analysis shows the recovery period of the investment based on electricity production at around 8.8 years, making solar PV microgrids a viable option for remote areas like Manpura Island.
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