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Optimal sizing of a Hybrid Renewable Energy System: Importance of data selection with highly variable renewable energy sources

机译:混合再生能源系统的最佳尺寸:数据选择具有高度可变可再生能源的重要性

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摘要

The replacement of fossil fuels for producing energy with renewable sources is crucial to limit the climate change effects. However, the unpredictable nature of renewables, like sun and wind, complicates their integration within the power systems. This problem can be faced with the introduction of Hybrid Renewable Energy Systems (HRESs) where several energy sources can be incorporated. A key aspect is the assessment of the HRES configuration, which is fundamental to obtain a feasible system from both technical and economic points of view. In this paper, a novel Mixed Integer Linear Programming (MILP) optimization algorithm has been developed to design a tool capable of assessing the optimal sizing of a HRES. The algorithm has been applied to a real case study of a mountain hut located in South-Tyrol (Italy) with a hybrid system composed by solar, wind and diesel generators together with a battery storage. The algorithm compares several scenarios providing the optimal configurations of the HRES, which are characterized by different costs and energy deficits. This tool helps engineers to identify the best trade-off between costs and energy deficits in the planning phase of a HRES, still granting the demand of the users as well as the constraints.
机译:用可再生资源制造能量的化石燃料是至关重要的,以限制气候变化效应。然而,像太阳和风一样可再生能源的不可预测性质使他们在电力系统内的集成使其集成。该问题可以介绍混合可再生能源系统(返回页首),其中可以纳入几种能源。一个关键方面是评估HRES配置,这是从技术和经济观点获得可行的系统的基础。本文已经开发了一种新颖的混合整数线性编程(MILP)优化算法来设计一种能够评估HRES的最佳施胶的工具。该算法已应用于位于南蒂罗尔(意大利)的山地小屋的实际研究,其中由太阳能和柴油发电机组成的混合系统以及电池存储器。该算法比较了提供HRE的最佳配置的若干场景,其特征在于不同的成本和能量缺陷。此工具可帮助工程师识别人力资源规划阶段成本和能源赤字之间的最佳权衡,仍然授予用户的需求以及约束。

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