数据驱动的用户感知HVAC调度

Daniel Petrov, Rakan Alseghayer, D. Mossé, Panos K. Chrysanthis
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引用次数: 4

摘要

暖通空调(暖通空调)系统在住宅和商业建筑中消耗了大量的能源。改善墙壁和窗户的隔热性能、使用节能灯泡,以及在建筑设计中更有效地利用热调节空气,这些都是解决空间调节能源使用量高的一些措施。在本文中,我们解决了影响建筑物供暖和制冷能耗的主要问题,即炉子/空调的占空比。我们提出了一种基于多元线性回归模型的三重调度机制D-DUAL。我们的调度程序最大限度地减少了占空比,不会影响用户的舒适度。我们的实验评估表明,与商用暖通空调系统相比,我们提出的方法可节省高达49%的能源。
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Data-Driven User-Aware HVAC Scheduling
HVAC (Heat, Ventilation, Air Conditioning) systems account for significant amount of energy spent in residential and commercial buildings. Improved wall and window insulation, energy efficient bulbs as well as building design that facilitates a more optimal usage of the thermally conditioned air within a building, are amongst some of the measures taken to address the high usage of energy for space conditioning. In this paper we address a main issue that affects the energy consumption for heating and cooling of buildings, namely the duty cycle of the furnaces/air-conditioners. We propose D-DUAL, a 3-fold scheduling mechanism that builds on multiple variable linear regression model. Our scheduler minimizes the duty cycle and does not impact users’ comfort. Our experimental evaluation shows that our proposed approach saves up to 49% energy, compared to commodity HVAC systems.
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