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Real-time building energy and comfort parameter data collection using mobile indoor robots

机译:使用移动室内机器人实时建筑能量和舒适参数数据收集

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Optimizing and improving energy performance of buildings while maintaining occupants' comfort are primary goals for building managers. In order to analyze a building's energy performance and make informed retrofit, maintenance, or operational decisions, decision-makers need access to credible real-time data illustrating how building systems are being used by its occupants at a floor and room level granularity. Traditionally, such data has been collected in buildings using wired or wireless systems by installing a dense array of sensors in every building location that needs monitoring. This is an effort and cost-prohibitive approach, especially in existing older buildings where instrumentation and integration with existing building systems is challenging. This paper introduces a novel concept of using autonomous mobile indoor robots for monitoring various occupant comfort and energy parameters inside an existing building, and discusses how the collected data can be utilized in various analyses. The research evaluates the hypothesis that a single multi-sensor fused robotic data mule that collects building energy systems performance and occupancy comfort data at sparse locations inside a building can provide decision-makers with a rich data set that is comparable in fidelity to data obtained from pre-installed and fixed sensor systems. In order to demonstrate the effectiveness of the proposed approach, an experiment was conducted using a tele-operated robot outfitted with thermal comfort data collection sensors and a localization camera in a multi-occupancy space within a large university building. The data collected by the mobile robot was statistically compared with data obtained from the building's pre-installed Building Automation System. Experimental results demonstrated the proposed method's promise and applicability in collecting dense actionable data in large spaces using only a sparse set of sensors mounted on mobile indoor robots.
机译:优化和完善,同时保持驾乘者的舒适性建筑物的节能性能是建立管理者的首要目标。为了分析建筑物的能源性能,并做出明智的改造,维护和经营决策,决策者需要获得可信的实时数据说明构建系统是如何被使用它的居住者在一个楼层和房间级别的粒度。传统上,这样的数据已经在使用有线或无线系统通过在每一个建筑物位置需要被监视安装传感器的密集阵列的建筑物收集。这是一个努力和成本过高的做法,尤其是在现有的老建筑,其中仪器仪表,并与现有建筑系统集成是具有挑战性的。本文介绍了使用自主移动机器人室内用于监视现有的建筑物内的各种乘员的舒适和能量参数的一个新的概念,并且讨论了如何将收集的数据可以以各种分析中使用。该研究评估单个多传感器融合的机器人数据骡子的假设,收集在建设可以为决策者提供了丰富的数据集是在保真度相当于从获得的数据中稀疏的地方建筑节能系统的性能和占用舒适数据预装和固定传感器系统。为了证明所提出的方法的有效性,一个实验使用大大学建筑物内以多占用空间与热舒适的数据收集的传感器和一个定位相机配备一个远程操作的机器人进行的。移动机器人收集的数据与建筑的预安装楼宇自动化系统获得的数据进行统计比较。实验结果表明,该方法在仅使用稀疏组传感器安装在移动机器人室内收集在大空间密集的可操作数据承诺和适用性。

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