Multi-criteria optimal sizing and analysis of PV/wind/fuel cell/battery/diesel generator for rural electrification: A case study in Chad

Mahamat Adoum Abdoulaye, Sebastian Waita, C. Wekesa, J. Mwabora
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Abstract

Access to sustainable, clean, affordable, and reliable electricity is crucial for social and economic development, yet Sub-Saharan Africa (SSA) struggles significantly in this context. In CHAD, only 11.3% of the population is able to access electricity, making it one of the least electrified countries in SSA with the lowest clean energy access. In rural areas, electricity access falls to just 1.3%. This research applies and executes a Multi-Objective Particle Swarm Optimization (MOPSO) algorithm using MATLAB R2023b to assess the techno-economic, environmental, and social impacts of a hybrid system based on optimal PV/Wind/Battery/Fuel Cell (FC)/Diesel generator (DG) sizing for rural electrification in CHAD. The proposed system's self-sufficiency index (SSSI) and the Annualized System Cost (ASC) were chosen as objective functions to guarantee the economic feasibility of the system, higher self-sufficiency, and lower dependence on external energy sources (DG). The simulation results show that the optimal size of the proposed system supplies the load demand by 100% of the renewable energy sources (RES)  fraction, and the optimal capacities of the main components to supply the load demand are: Solar Power (493 KW), Wind Turbine (166 KW), Battery Energy Charge/Discharge (229180 kWh /221300 kWh), Hydrogen tank storage energy (83 874 kWh), Electrolyzer size (202 KW), Fuel cell size (144 KW). The evelized cost of electricity (LCOE) of 0.2982 $/kWh, which is 51.12% lower than the national unit production costs of electricity in rural areas of CHAD (0.61 $/kWh). This LCOE is also the lowest compared to previous works done using HOMER Pro for the country of CHAD. The results also give a levelized cost of hydrogen (LCOH) of 3.8563 US $/kg, lower than for all studies found in the literature for the country of Chad. The proposed system's yearly avoided greenhouse gas (GHG) emission is 374 640 kg. The proposed system will create five (5) new jobs (JCO) and improve the Human Development Index (HDI) of the study area by 17.66% (the obtained HDI is 0.4683, and the CHAD HDI is 0.398) with an SSSI of 51.14%. This study provides a better practical energy design tool in decision-making for designers, companies, investors, policymakers, and the Chadian government when implementing this type of system in particular rural locations.
用于农村电气化的光伏/风能/燃料电池/电池/柴油发电机的多标准优化选型与分析:乍得案例研究
获得可持续、清洁、负担得起和可靠的电力对于社会和经济发展至关重要,然而撒哈拉以南非洲(SSA)在这方面却举步维艰。在乍得,只有 11.3% 的人口能够用上电,使其成为撒哈拉以南非洲电气化程度最低、清洁能源普及率最低的国家之一。在农村地区,用电率仅为 1.3%。本研究使用 MATLAB R2023b,应用并执行了多目标粒子群优化(MOPSO)算法,以评估基于光伏/风能/电池/燃料电池(FC)/柴油发电机(DG)最佳规模的混合系统对 CHAD 农村电气化的技术经济、环境和社会影响。选择了拟议系统的自给自足指数(SSSI)和年化系统成本(ASC)作为目标函数,以保证系统的经济可行性、更高的自给自足性以及对外部能源(DG)的更低依赖性。仿真结果表明,拟议系统的最佳规模是通过 100% 的可再生能源(RES)部分来满足负载需求,而满足负载需求的主要组件的最佳容量为太阳能(493 千瓦)、风力涡轮机(166 千瓦)、电池充放电能量(229180 千瓦时/221300 千瓦时)、氢气罐存储能量(83874 千瓦时)、电解槽大小(202 千瓦)、燃料电池大小(144 千瓦)。平均电力成本(LCOE)为 0.2982 美元/千瓦时,比乍得农村地区的全国单位电力生产成本(0.61 美元/千瓦时)低 51.12%。与之前使用 HOMER Pro 为乍得国家所做的工作相比,该 LCOE 也是最低的。研究结果还得出了 3.8563 美元/千克的氢气平准化成本 (LCOH),低于文献中针对乍得的所有研究。拟议系统每年可避免的温室气体 (GHG) 排放量为 374 640 千克。拟议系统将创造五 (5) 个新的工作岗位 (JCO),并将研究地区的人类发展指数 (HDI) 提高 17.66%(获得的 HDI 为 0.4683,乍得的 HDI 为 0.398),SSSI 为 51.14%。这项研究为设计者、公司、投资者、决策者和乍得政府在特定农村地区实施此类系统时提供了更好的实用能源设计决策工具。
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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