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Smart City Digital Twin-Enabled Energy Management: Toward Real-Time Urban Building Energy Benchmarking

机译:智能城市数字双床能源管理:走向实时城市建筑能源基准

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To meet energy-reduction goals, cities are challenged with assessing building energy performance and prioritizing efficiency upgrades across existing buildings. Although current top-down building energy benchmarking approaches are useful for identifying overall efficient and poor performers across a portfolio of buildings at a city scale, they are limited in their ability to provide actionable insights regarding efficiency opportunities. Concurrently, advances in smart metering data analytics combined with new data streams available via smart metering infrastructure present the opportunity to incorporate previously undetectable temporal fluctuations into top-down building benchmarking analyses. This paper leveraged smart meter electricity data to develop daily building energy benchmarks segmented by strategic periods to quantify their variation from conventional, annual energy benchmarking strategies and investigate how such metrics can lead to near real-time energy management. The periods considered include occupied periods during the school year, unoccupied periods during the school year, occupied periods during the summer, unoccupied periods during the summer, and peak summer demand periods. Results showed that temporally segmented building energy benchmarks are distinct from a building's overall benchmark. This demonstrates that a building's overall benchmark masks periods in which a building is over- or underperforming during the day, week, or month; thus, temporally segmented energy benchmarks can provide a more specific and accurate measure for building efficiency. We discussed how these findings establish the foundation for digital twin-enabled urban energy management platforms by enabling identification of building retrofit strategies and near-real-time efficiency in the context of the performance of an entire building portfolio. Temporally segmented energy benchmarking measures generated from smart meter data streams are a critical step for integrating smart meter analytics with building energy benchmarking techniques, and for conducting smarter energy management across a large geographic scale of buildings.
机译:为了满足能量减少目标,城市因评估建筑能源绩效和现有建筑物的优先效率升级而受到挑战。尽管目前的自上而下建筑能源基准方法对于在城市规模的建筑物组合中识别整体高效和差的表演者,但它们的能力有限,以便提供有关效率机会的可操作见解。同时,智能计量数据分析的进步与通过智能计量基础设施可用的新数据流结合提供了将以前未检测到的时间波动纳入自上而下的建筑基准分析中的机会。本文利用智能仪表电流,以开发由战略期间分割的日常建筑能源基准,以量化传统,年度能源基准战略的变化,并调查这些指标如何导致近实时能源管理。被审议的时期包括学年期间的占用期,学年期间未占年的时期,夏季期间占用期,夏季未占时期,以及夏季需求的高峰期。结果表明,临时分段建筑能源基准与建筑物的整体基准截然不同。这表明建筑物的整体基准掩模期间,建筑物在白天,一周或月份的表现不足;因此,临时分段的能量基准可以提供更具体和准确的建筑效率的措施。我们讨论了这些发现如何通过在整个建筑组合的表现的情况下识别建立改装策略和近实时效率来确定数字双胞胎能源管理平台的基础。从智能仪表数据流产生的时间上分段的能量基准措施是将智能仪表分析与建筑能量基准技术集成的重要步骤,以及在大型地理规模的建筑物上进行更智能的能量管理。

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