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Architecture study of an energy microgrid

机译:能量微电网的建筑学研究

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In the last decade, there has been a push to achieve regional energy independence by developing small, self-sufficient microgrids that complement, and in some cases, replace the main centralized grid. This sort of distributed energy system has numerous advantages. One of them is the ability to disengage and function independently from the main grid in the event of a catastrophic failure. Additionally, they allow for a far greater penetration of renewable energy sources, thus allowing for a much cleaner energy system with a diverse set of energy sources, and limited dependence on fossil fuels. Lastly, the proximity of the energy production and end user allows for the excess energy, generally dissipated, produced during the power generation process to be leveraged into a parallel heating/cooling cycle, thus increasing the energy efficiency of the entire process. While the concept of a distributed energy system and its merits are easy to see, industry experience shows that effectively designing such a system is a far more complicated task. Most such systems fail to generate at their potential due to the lack of appropriate configuration. The architecture design of a microgrid is complex due its dependence on a number of project-specific parameters such as stakeholder needs, resource availability, existing legacy infrastructure, and demand among others. The purpose of this paper is to study the use of a System Architecture approach to designing a microgrid for Ithaca NY. Such an approach involves examining the needs of the stakeholders, determining system goals, selecting a concept, and developing an architectural model, a mathematical construct that is used to generate alternative architectures and evaluate their cost, performance, and risk. The space of alternative architectures is explored by means of a multi-objective evolutionary optimization algorithm. Data mining and sensitivity analysis algorithms are used to determine design features that are common in good architectures. Finally, a small set of promising architectures is selected.
机译:在过去的十年中,通过开发补充,在某些情况下,通过开发小型自给自足的微电网来实现区域能源独立性,在某些情况下更换主要集中网格。这种分布式能量系统具有许多优点。其中一个是在发生灾难性失败的情况下独立于主电网脱离和功能的能力。此外,它们允许更大的可再生能源渗透,从而允许具有多样化的能源的更清洁的能量系统,并对化石燃料有限。最后,能量生产和最终用户的接近允许在发电过程中产生的通常消散的过量能量,以便利用在平行加热/冷却循环中,从而提高整个过程的能量效率。虽然分布式能源系统的概念及其优点很容易看出,行业经验表明,有效地设计这种系统是一个更复杂的任务。由于缺乏适当的配置,大多数此类系统无法以其潜力生成。由于依赖于许多项目特定参数,如利益相关者需求,资源可用性,现有遗留基础设施等需求,因此微电网的架构设计是复杂的。本文的目的是研究使用系统架构方法来设计伊萨卡NY的微电网。这样的方法涉及检查利益相关者的需求,确定系统目标,选择概念,以及开发架构模型,用于生成替代架构的数学构造,并评估其成本,性能和风险。通过多目标进化优化算法探索替代架构的空间。数据挖掘和敏感性分析算法用于确定良好架构中常见的设计功能。最后,选择了一小部分有希望的架构。

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