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Life cycle cost, embodied energy and loss of power supply probability for the optimal design of hybrid power systems

机译:混合动力系统的最佳设计的生命周期成本,内在能量和供电概率的损失

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摘要

Stand-alone hybrid renewable energy systems are more reliable than one-energy source systems. However, their design is crucial. For this reason, a new methodology with the aim to design an autonomous hybrid PV-wind-battery system is proposed here. Based on a triple multi-objective optimization (MOP), this methodology combines life cycle cost (LCC), embodied energy (EE) and loss of power supply probability (LPSP). For a location, meteorological and load data have been collected and assessed. Then, components of the system and optimization objectives have been modelled. Finally, an optimal configuration has been carried out using a dynamic model and applying a controlled elitist genetic algorithm for multi-objective optimization. This methodology has been applied successfully for the sizing of a PV-wind-battery system to supply at least 95% of yearly total electric demand of a residential house. Results indicate that such a method, through its multitude Pareto front solutions, will help designers to take into consideration both economic and environmental aspects.
机译:独立的混合可再生能源系统比单能源系统更可靠。但是,它们的设计至关重要。因此,在此提出了一种旨在设计自主混合式PV-风电池系统的新方法。该方法基于三重多目标优化(MOP),结合了生命周期成本(LCC),内在能量(EE)和电源损耗概率(LPSP)。对于某个位置,已经收集并评估了气象和负荷数据。然后,对系统的组成部分和优化目标进行了建模。最后,使用动态模型并采用受控精英遗传算法进行多目标优化,从而实现了最佳配置。该方法已成功应用于光伏-风能电池系统的选型,可满足住宅每年总电力需求的至少95%。结果表明,这种方法通过其众多的Pareto前端解决方案,将有助于设计人员同时考虑经济和环境方面。

著录项

  • 来源
    《Mathematics and computers in simulation》 |2014年第4期|46-62|共17页
  • 作者单位

    Ecole d'ingenieurs en Genie des Systemes Industriels EIGSI, 26 rue de vaux de Foletier, 17041 La Rochelle Cedex 1, France, Laboratory of Computer Science and Automation for Systems (Laboratoire d'Informatique et d'Automatique pour les Systemes LIAS), National High Engineering School (ENS1P), Poitiers University, France;

    Ecole d'ingenieurs en Genie des Systemes Industriels EIGSI, 26 rue de vaux de Foletier, 17041 La Rochelle Cedex 1, France;

    LIAS-ENSIP, University of Poitiers, Bat. B25, 2 rue Pierre Brousse, B.P. 633, 86022 Poitiers Cedex, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hybrid power system; Dynamic simulation; Multi-objective design optimization; Genetic algorithm;

    机译:混合动力系统;动态仿真多目标设计优化;遗传算法;

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