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A data-driven approach for discovering heat load patterns in district heating

机译:一种数据驱动的方法来发现区域供热中的热负荷模式

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摘要

Understanding the heat usage of customers is crucial for effective district heating operations and management. Unfortunately, existing knowledge about customers and their heat load behaviors is quite scarce. Most previous studies are limited to small-scale analyses that are not representative enough to understand the behavior of the overall network. In this work, we propose a data-driven approach that enables large-scale automatic analysis of heat load patterns in district heating networks without requiring prior knowledge. Our method clusters the customer profiles into different groups, extracts their representative patterns, and detects unusual customers whose profiles deviate significantly from the rest of their group. Using our approach, we present the first large-scale, comprehensive analysis of the heat load patterns by conducting a case study on many buildings in six different customer categories connected to two district heating networks in the south of Sweden. The 1222 buildings had a total floor space of 3.4 million square meters and used 1540 TJ heat during 2016. The results show that the proposed method has a high potential to be deployed and used in practice to analyze and understand customers' heat-use habits.
机译:了解客户的热量使用对于有效的区域供热运营和管理至关重要。不幸的是,关于客户及其热负荷行为的现有知识十分匮乏。以前的大多数研究仅限于小规模的分析,这些分析的代表性不足以了解整个网络的行为。在这项工作中,我们提出了一种数据驱动的方法,该方法无需进行先验知识即可在区域供热网络中进行大规模的热负荷模式自动分析。我们的方法将客户资料分为不同的组,提取其代表模式,并检测其资料与其他组明显不同的异常客户。通过使用我们的方法,我们通过对六个不同客户类别的许多建筑物进行了案例研究,从而对热负荷模式进行了首次大规模,全面的分析,这些建筑物与瑞典南部的两个区域供热网络相连。 2016年,这1222栋建筑的总建筑面积为340万平方米,使用了1540 TJ热量。结果表明,该方法在分析和了解客户的热量使用习惯方面具有很高的部署和实践应用潜力。

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