首页> 外文期刊>International journal of applied mechanics >Portfolio Optimization of Photovoltaic/Battery Energy Storage/Electric Vehicle Charging Stations with Sustainability Perspective Based on Cumulative Prospect Theory and MOPSO
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Portfolio Optimization of Photovoltaic/Battery Energy Storage/Electric Vehicle Charging Stations with Sustainability Perspective Based on Cumulative Prospect Theory and MOPSO

机译:基于累积前景理论和MOPSO的可持续发展透视的光伏/电池储能/电动车充电站的投资组合优化

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摘要

Recently, an increasing number of photovoltaic/battery energy storage/electric vehicle charging stations (PBES) have been established in many cities around the world. This paper proposes a PBES portfolio optimization model with a sustainability perspective. First, various decision-making criteria are identified from perspectives of economy, society, and environment. Secondly, the performance of alternatives with respect to each criterion is evaluated in the form of trapezoidal intuitionistic fuzzy numbers (TrIFN). Thirdly, the alternatives are ranked based on cumulative prospect theory. Then, a multi-objective optimization model is built and solved by multi-objective particle swarm optimization (MOPSO) algorithm to determine the optimal PBES portfolio. Finally, a case in South China is studied and a scenario analysis is conducted to verify the effectiveness of the proposed model.
机译:最近,在世界各地的许多城市中建立了越来越多的光伏/电池能量存储/电动车辆充电站(PBE)。 本文提出了具有可持续性视角的PBES组合优化模型。 首先,从经济,社会和环境的角度来确定各种决策标准。 其次,以梯形直觉模糊数(TRIFN)的形式评估关于每个标准的替代方案的性能。 第三,替代方案基于累积前景理论进行排序。 然后,通过多目标粒子群优化(MOPSO)算法构建和解决了多目标优化模型,以确定最佳PBES产品组合。 最后,研究了华南的案例,并进行了场景分析以验证拟议模型的有效性。

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