Mukhtar Safyan, Muhammad Shakoor, Alyousef Haifa A, Khan Wajid, Shah Rasool, El-Tantawy Samir A
Department of Basic Sciences, Preparatory Year Deanship, King Faisal University, Al-Ahsa, 31982, Saudi Arabia.
Department of Mathematics and Statistics, College of Science, King Faisal University, Al-Ahsa, 31982, Saudi Arabia.
Heliyon. 2024 Jul 30;10(16):e35182. doi: 10.1016/j.heliyon.2024.e35182. eCollection 2024 Aug 30.
To satisfy the electricity needs of a village in Tangi, northwest Pakistan, the present research can design and evaluate the environmental and economical aspects of an optimal hybrid photovoltaic-biogas-hydropower-battery energy sustainable system (PV-BG-HP-BESS). This framework integrates various renewable energy sources, delivering a modern, efficient approach to sustainable energy solutions. The HOMER Pro software is utilized to optimize the most economical and effective hybrid energy system. The results showed that the proposed hybrid system comprising 91.4 kWp PV modules, 19.6 kW hydropower, a 50 kW biogas generator (BG), 36 batteries, and a 60.6 kW converter was the most economical choice. This system, which used the cyclic charging (CC) method, had a cost of energy (COE) of 0.0728 $/kWh and a total net present cost (NPC) of $152,242. The suggested hybrid energy system for rural areas of Pakistan includes photovoltaic (PV), biogas (BG), hydro, and battery components to provide a dependable and sustainable power supply. This system minimizes the need for expensive fossil fuels while simultaneously minimizing environmental impact by lowering pollutants and greenhouse gas emissions. The system's annual electricity production is 294,782 kWh, with PV leads at 59.4%, BG at 6.02%, and hydro at 34.6%, ensuring uninterrupted power generation even in remote areas. The unmet load, extra electricity, and capacity shortage illustrate the reliability of the system and make it possible to address rural electrification challenges while supporting sustainable development and economic growth. Moreover, the outcomes of the proposed hybrid system dominate the previous studies in multiple objectives, including cost and sensitivity analysis, when compared.
为满足巴基斯坦西北部坦吉一个村庄的电力需求,本研究可设计并评估最优混合光伏-沼气-水电-电池能源可持续系统(PV-BG-HP-BESS)的环境和经济方面。该框架整合了各种可再生能源,为可持续能源解决方案提供了一种现代、高效的方法。利用HOMER Pro软件优化最经济有效的混合能源系统。结果表明,所提出的混合系统包括91.4千瓦峰值功率的光伏模块、19.6千瓦的水电、一台50千瓦的沼气发电机(BG)、36个电池和一个60.6千瓦的转换器,是最经济的选择。该系统采用循环充电(CC)方法,能源成本(COE)为0.0728美元/千瓦时,总净现值成本(NPC)为152,242美元。为巴基斯坦农村地区建议的混合能源系统包括光伏(PV)、沼气(BG)、水电和电池组件,以提供可靠和可持续的电力供应。该系统最大限度地减少了对昂贵化石燃料的需求,同时通过降低污染物和温室气体排放,最大限度地减少了对环境的影响。该系统的年发电量为294,782千瓦时,其中光伏占59.4%,沼气占6.02%,水电占34.6%,即使在偏远地区也能确保不间断发电。未满足的负荷、多余的电力和容量短缺说明了该系统的可靠性,并使得在支持可持续发展和经济增长的同时解决农村电气化挑战成为可能。此外,与之前的研究相比,所提出的混合系统在包括成本和敏感性分析在内的多个目标方面的结果更具优势。