南非用于制氢的电池储能并网混合能源系统的优化

IF 0.8 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Esmeralda Mukon;Karen S. Garner
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引用次数: 0

摘要

提出了一种由风能、太阳能光伏和电池储能系统(BESS)组成的并网混合能源系统的优化研究。为了解决风能和太阳能资源的间歇性,电网对不足的能量进行补偿以满足电解槽负荷需求,而多余或减少的能量则存储在BESS中以提高可靠性。该研究在基于python的Pymoo框架中采用了约束多目标非支配遗传算法。优化确定了一种理想的并网混合能源系统,该系统在高可靠性下具有最小的电力成本和最大的效率。随后,对BESS进行优化,在保持可靠性的同时降低存储和电力成本。优化后的BESS成功地集成到混合动力系统中。电力成本和可靠性分别基于分时电价和电力供应损失概率进行评估。利用2mw质子交换膜电解槽,该研究实现了一个高效的混合系统,BESS应用于南非的六个可再生能源开发区。包括BESS可以降低电力成本,提高可靠性,并将弃电率降低40-66%。
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Optimization of a grid-connected hybrid energy system with battery storage for hydrogen production in South Africa
This paper presents an optimization study for a grid-connected hybrid energy system combining wind, solar PV, and a battery energy storage system (BESS) for hydrogen production. To address the intermittency of wind and solar resources, the grid compensates for insufficient energy to meet the electrolyzer load demand, while excess or curtailed energy is stored in the BESS to enhance reliability. The study employs a constrained multi-objective non-dominated genetic algorithm within the Python-based Pymoo framework. The optimization identifies an ideal grid-connected hybrid energy system with minimized electricity costs and maximized efficiency at high reliability. Subsequently, the BESS is optimized to reduce storage and electricity costs while maintaining reliability. The optimized BESS is successfully integrated into the hybrid system. Cost of electricity and reliability are assessed based on time-of-use tariffs and loss of power supply probability, respectively. Using a 2 MW proton exchange membrane electrolyzer, the study achieves a highly efficient hybrid system with the BESS applied to six Renewable Energy Development Zones in South Africa. Including the BESS reduces electricity costs, improves reliability, and lowers curtailment ratios by 40–66%.
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来源期刊
SAIEE Africa Research Journal
SAIEE Africa Research Journal ENGINEERING, ELECTRICAL & ELECTRONIC-
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发文量
29
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