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An innovative approach to design cogeneration systems based on big data analysis and use of clustering methods

机译:基于大数据分析和聚类方法设计热电联产系统的创新方法

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In recent years, collecting energy consumption data has become easier thanks to the decreasing of smart sensors cost. Moreover, the capacity of data analysis using big data methods like machine learning and artificial intelligence has increased. Such methods are expected to be useful to increase the efficiency of energy systems. In this paper, an innovative approach based on big data analysis to design cogeneration systems is presented. More specifically, this study describes how cluster analysis can be applied to analyse energy consumption data. The aim of the method is to design cogeneration systems that can suit energy demand profiles more efficiently, choosing the correct type of cogeneration technology, operation strategy and, if they are necessary, the size of energy storages. In the first part of the paper, the method based on clustering to perform the analysis of the dataset is described. In the second part, a case study based on a cogeneration plant (a wood industry that requires low temperature heat to dry wood into steam-powered kilns) is analysed. An alternative cogeneration system is designed by means of the proposed method in terms of the choice of the cogeneration technology, the sizing of thermal storage, and the operation strategy of the plant. Thermodynamic and economic benchmarks are defined to evaluate the differences between as-is and alternative scenarios. Results show that the proposed innovative method is useful to design cogeneration systems for industry allowing energy and economic savings.
机译:近年来,由于智能传感器的降低,收集能耗数据变得更加容易。此外,使用像机器学习和人工智能等大数据方法的数据分析能力增加。预计这些方法将有助于提高能量系统的效率。本文提出了一种基于大数据分析的创新方法,用于设计热电联产系统。更具体地,该研究描述了如何应用集群分析来分析能量消耗数据。该方法的目的是设计热电联产系统,可以更有效地适合能量需求,选择正确类型的热电联产技术,操作策略,以及如果需要的情况,是能源存储的大小。在本文的第一部分中,描述了基于聚类以执行数据集分析的方法。在第二部分中,分析了基于热电厂的案例研究(一种需要低温热到干燥木材到蒸汽动力窑中的木材行业)。替代的热电联产系统是通过在选择热电化技术的选择,热存储的尺寸和工厂的操作策略方面设计的替代方法。定义热力学和经济基准以评估AS-IS和替代方案之间的差异。结果表明,拟议的创新方法可用于设计工业系统,允许能源和经济储蓄的工业。

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