基于成本的光伏-电池并网能源系统优化模型

Yara Khawaja, D. Giaouris, H. Patsios, M. Dahidah
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引用次数: 20

摘要

光伏电池能源系统(PV-BESs)最近成为电力消费者的一种有前途的替代能源解决方案。由于与太阳能相关的高度不可预测性和间歇性,在将PV-BESs并入电网的同时,必须优化其规模和间歇性缓解。本文提出了一种针对不同电池技术的并网PV-BES系统最优尺寸的技术经济模型。利用迭代分析方法确定电池容量,在规定的PV额定功率范围内生成PV- bes的多种组合,并应用适当的能量管理策略来控制系统的能量流。接下来是一个经济模型,用于计算所有可能的PV-BES尺寸的系统平准化能源成本(LCOE)。根据最小LCOE选择最佳PV尺寸和与PV系统耦合的最佳BES。在此背景下,提出了一种改进的LCOE公式,其中包括反映剩余光伏输出和从电网购买的能量影响的新参数。此外,提出的模型使用BES的平均交付成本(LCOD),并将其与系统LCOE进行比较。一年内每小时太阳辐照、温度和负荷需求的数据用于系统规模。结果表明:光伏系统额定功率为710 KW时,系统LCOE最小,与光伏系统配套最合适的BES是容量为1 MWh的氧化还原液流电池。与电网电价相比,成本降低18%。此外,与单独使用光伏系统时的48%相比,所提出的模型允许75%的PV- bes自行消耗能源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal cost-based model for sizing grid-connected PV and battery energy system
Photovoltaic-battery energy systems (PV-BESs) have recently emerged as a promising alternative energy solution for electricity consumers. Due to the high level of unpredictability and intermittency associated with solar energy, the optimal sizing and intermittency mitigation of PV-BESs is necessary while integrating them into the grid. This paper presents a technical and economical model for the optimal sizing of a grid-connected PV-BES system for different battery technologies. An iterative analytical approach is utilized to determine the battery capacity, generate multiple combinations of PV-BES over a defined range of PV rated power, and apply a proper energy management strategy to control the energy flow through the system. This is followed by an economic model to calculate the system levelized cost of energy (LCOE) for all possible PV-BES sizes. The optimal PV size and best BES coupled with the PV system is chosen depending on the minimum LCOE. In this context, an improved formula of LCOE is proposed which includes new parameters reflecting the impact of surplus PV output and the energy purchased from the grid. Additionally, the proposed model uses the levelized cost of delivery (LCOD) for BES and compares it with system LCOE. Data over one year of hourly solar irradiation, temperature and load demand are used for system sizing. The results show that the minimum system LCOE is observed when the PV rated power is 710 KW, and the most suitable BES in conjunction with the PV system is redox flow battery with 1 MWh capacity. A cost reduction of 18% obtained compared to the grid electricity price. Moreover, the proposed model allows 75% of self-consumed energy by the PV-BES compared to 48% when using the PV system alone.
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