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A novel optimal planning methodology of an autonomous Photovoltaic/Wind/Battery hybrid power system by minimizing economic, energetic and environmental objectives

机译:通过最大限度地减少经济,精力充沛,环境目标自主光伏/风/电池混合动力系统的一种新颖性规划方法

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Generated electricity from renewable sources such as solar panels and wind turbines is considered, until now, as clean and nonpolluting energy. However, these systems are responsible and directly tied to greenhouse gases (GHG) emissions when considering their different steps of manufacturing, transportation, operation, maintenance, and decommissioning. This paper describes a new sizing optimization methodology of a stand-alone hybrid Photovoltaic/Wind/Battery system, minimizing the Levelized Cost of Energy (LCOE), the Loss of Power Supply Probability (LPSP), and the Equivalent Carbon Dioxide (CO2-eq) life cycle emission. An elitist Non-dominated Sorting Genetic Algorithm (NSGA-II) is used to solve this constrained nonlinear multi-objective optimization problem taking the expected photovoltaic peak power, wind turbine output power, batteries' energy capacity as decision variables and embodied carbon dioxide per unit of electricity consumed as a constraint. Different combinations of PV/Wind/Battery systems are optimized and compared to identify the cost-effective, reliable, and environmentally friendly optimal architecture. Finally, a sensitivity analysis is applied to the proposed algorithm; only the batteries' state of charge (SOC) setpoint is considered to examine its impact on the system sizing procedure. The proposed algorithm is used for optimal planning of a stand-alone hybrid renewable power system expected to be installed in Borj Cedria Science and Technology Park (latitude = 36.71oN, longitude = 10.42oE). Simulation results proved the effectiveness of the proposed method to achieve economic, energetic, and environmental objectives.
机译:迄今为止,考虑了从太阳能电池板和风力涡轮机等可再生源的产生电力,如清洁和不耐受能量。然而,在考虑其不同步骤的制造,运输,操作,维护和退役时,这些系统责任并直接与温室气体(GHG)排放。本文介绍了一款独立式混合光伏/风/风电池系统的新尺寸优化方法,最大限度地减少了能量(LCoE)的稳定性成本,电源概率(LPSP)和等效二氧化碳(CO2-eq) )生命周期发射。 Elitist非主导的分类遗传算法(NSGA-II)用于解决这一约束的非线性多目标优化问题,采用预期的光伏峰值电源,风力涡轮机输出功率,电池的能量作为决策变量和实施每单位二氧化碳作为约束消费的电力。 PV /风/电池系统的不同组合经过优化,并比较了识别成本效益,可靠和环保的最佳架构。最后,应用于所提出的算法的灵敏度分析;只有电池的充电状态(SOC)设定点被认为是检查其对系统大小的影响。该算法用于最佳规划,预计将安装在Borj Cedria Science Park(Latitude = 36.71on,经度= 10.42oe)中安装的独立混合再生能源系统。仿真结果证明了拟议方法实现经济,精力充沛,环境目标的有效性。

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