智能建筑的低碳舒适性管理

Jennifer Williams, Benjamin Lellouch, S. Stein, C. Vanderwel, S. Gauthier
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引用次数: 0

摘要

我们为智能建筑管理系统(BMS)的发展提出了关键的研究挑战,以实现低碳舒适。到目前为止,该领域的工作主要集中在优化建筑资源的单一方面,如能源使用或热舒适,但最近转向BMS设计,可以同时解决建筑资源和居住者舒适维度的许多方面,如空气质量、温度、湿度、可听噪音水平和相关的自动化安全功能。在本文中,我们讨论了四个研究方向,突出了该领域当前的挑战,为研究提供了机会:(A)机器学习的数据限制,(B)舒适度的多种定义,(C) BMS可用性和界面,以及(D)自动化BMS决策的安全性和安全性。解决这些挑战将有助于开发先进的以人为本的节能建筑,以满足居住者的需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Carbon Comfort Management for Smart Buildings
We present critical research challenges for the development of smart building management systems (BMS) to achieve low-carbon comfort. To date, work in this area has focused on optimising single-scope aspects of building resources, such as energy usage or thermal comfort, but there is a recent shift toward BMS design that could simultaneously address many aspects of building resources and comfort dimensions for occupants, such as air quality, temperature, humidity, audible noise levels, and related automated safety features. In this paper, we discuss four research directions highlighting current challenges in this domain that present opportunities for research: (A) data limitations for machine learning, (B) multiple definitions of comfort, (C) BMS usability and interfaces, and (D) safety and security of automated BMS decision-making. Addressing these challenges will enable the development of advanced human-centred energy-saving buildings that meet the needs of occupants.
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