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A data-driven procedure to model occupancy and occupant-related electric load profiles in residential buildings for energy simulation

机译:一种数据驱动的程序,用于对住宅建筑物中的占用和与占用者有关的电力负荷曲线进行建模,以进行能源模拟

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Improving the reliability of energy simulation outputs is becoming a pressing task to reduce the performance gap between the design and the operation of buildings. Occupant behaviour modelling is one of the most relevant sources of uncertainty in building energy modelling and is typically modelled via a priori choices made by modellers. Thus, an improvement in the description of occupant behaviour is needed. To this regard, the availability of smart meter recordings might help to generate more reliable input data for building energy models. This paper discusses a novel data-driven procedure that enables to create yearly occupancy and occupant-related electric load profiles to inform building energy modelling, using a typical uneven database made available by energy operators. The procedure is subdivided into three main tasks. The first has the intent to detect representative occupant-related electric load profiles from smart meters readings. The second task aims to generate yearly occupancy profiles from the same database. The last task assesses the impact of the generated occupancy and occupant-related electric load profiles on building energy simulation outputs. The procedure is applied to the case study of a multi-residential building in Milan, Italy and is meant to show the possibility to overcome deterministic inputs that might have little relation with the actual building operation. It showed a substantial improvement in the reliability of building energy simulation and that occupant related load profiles may account for about 8% of the building's energy need for space heating. (C) 2019 Elsevier B.V. All rights reserved.
机译:减小能源模拟输出的可靠性已成为缩小建筑物设计和运营之间性能差距的紧迫任务。乘员行为建模是建筑能源建模中最重要的不确定性来源之一,通常通过建模人员的先验选择进行建模。因此,需要对乘员行为的描述进行改进。在这方面,智能电表记录的可用性可能有助于为建筑能耗模型生成更可靠的输入数据。本文讨论了一种新颖的数据驱动程序,该程序能够使用能源运营商提供的典型不平衡数据库来创建年度占用率和与占用者相关的电力负荷曲线,从而为建筑能耗建模提供依据。该过程分为三个主要任务。第一种方法旨在从智能电表读数中检测代表乘员相关的电力负荷曲线。第二项任务旨在从同一数据库中生成年度入住情况。最后一项任务是评估生成的占用率和与占用者相关的电力负荷曲线对建筑能耗模拟输出的影响。该程序应用于意大利米兰的一栋多住宅建筑的案例研究,旨在显示克服与实际建筑运营关系不大的确定性输入的可能性。它显示出建筑物能源模拟可靠性的显着提高,并且与乘员相关的负荷曲线可能占建筑物供暖所需能量的约8%。 (C)2019 Elsevier B.V.保留所有权利。

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