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基于不同元启发式技术的埃及混合太阳能/风能/水力蓄能发电系统的最佳规模设计。

Optimal sizing of hybrid solar/wind/hydroelectric pumped storage energy system in Egypt based on different meta-heuristic techniques.

机构信息

Electrical Engineering Department, Faculty of Engineering, Minia University, Minia, 6111, Egypt.

Department of Electrical Engineering, Kyushu University, Fukuoka, 819-0395, Japan.

出版信息

Environ Sci Pollut Res Int. 2020 Sep;27(26):32318-32340. doi: 10.1007/s11356-019-06566-0. Epub 2019 Nov 7.

Abstract

Providing access to clean, reliable, and affordable energy by adopting hybrid power systems is important for countries looking to achieve their sustainable development goals. This paper presents an optimization method for sizing a hybrid system including photovoltaic (PV), wind turbines with a hydroelectric pumped storage system. In this paper, the implementation of different optimization techniques has been investigated to achieve optimal sizing of grid-connected hybrid renewable energy systems. A comprehensive study has been carried out between Whale Optimization Algorithm (WOA), Water Cycle Algorithm (WCA), Salp Swarm Algorithm (SSA), and Grey Wolf optimizer (GWO) to validate each one. Moreover, the optimal sizing of the system's components has been studied using real-time information and meteorological data of Ataka region located in Egypt. The purpose of the optimization process is to minimize the cost of energy from this hybrid system while satisfying the operation constraints including high reliability of the hybrid power supply, small fluctuation in the energy injected to the grid, and high utilization of the photovoltaic and wind complementary properties. MATLAB software package has been used to evaluate each optimization algorithm for solving the considered optimization problem. Simulation results proved that WOA has the most promising performance over other techniques.

摘要

通过采用混合能源系统为各国提供清洁、可靠和负担得起的能源对于实现可持续发展目标非常重要。本文提出了一种用于确定混合系统(包括光伏 (PV)、带有水力发电蓄能系统的风力涡轮机)尺寸的优化方法。在本文中,研究了不同的优化技术的实现,以实现并网混合可再生能源系统的最佳尺寸。已经在鲸鱼优化算法 (WOA)、水循坏算法 (WCA)、沙丁鱼群算法 (SSA) 和灰狼优化器 (GWO) 之间进行了全面研究,以验证每种算法的有效性。此外,还使用位于埃及阿塔卡地区的实时信息和气象数据研究了系统组件的最佳尺寸。优化过程的目的是最小化混合系统的能源成本,同时满足包括混合电源高可靠性、注入电网的能量波动小和提高光伏和风力互补特性的利用率在内的运行约束。已经使用 MATLAB 软件包来评估每种优化算法,以解决所考虑的优化问题。仿真结果证明,与其他技术相比,WOA 具有最有前景的性能。

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