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Sensitivity study for the PMV thermal comfort model and the use of wearable devices biometric data for metabolic rate estimation

机译:PMV热舒适性模型的敏感性研究以及可穿戴设备生物特征数据在代谢率估算中的应用

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This paper studies the sensitivity of the Predicted Mean Vote (PMV) thermal comfort model relative to its environmental and personal parameters of a group of people in a space. PMV model equations, adapted in ASHRAE Standard 55 Thermal Environmental Conditions for Human Occupancy, are used in this investigation to conduct parametric study by generating and analyzing multi-dimensional comfort zone plots. It is found that personal parameters such as metabolic rate and clothing have the highest impact. However, as these parameters are difficult to estimate or measure, they are usually assumed to be default values (rest conditions and light clothing). In this work, we show the application of the human-in-the loop sensor data of wearable devices to provide a continuous feedback for the averaged metabolism value of building occupants to be used in the PMV calculation. Moreover, we motivate the use of these sensor data to develop a new personalized comfort model. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文研究了预测平均投票(PMV)热舒适模型相对于空间中一群人的环境和个人参数的敏感性。在本研究中,采用了ASHRAE标准55“人类居住的热环境条件”中的PMV模型方程式,通过生成和分析多维舒适区图来进行参数研究。发现个人参数如新陈代谢率和衣着影响最大。但是,由于这些参数难以估计或测量,因此通常假定它们为默认值(休息条件和便衣)。在这项工作中,我们展示了可穿戴设备的人在环内传感器数据的应用,以为要在PMV计算中使用的建筑居民的平均新陈代谢值提供连续反馈。此外,我们鼓励使用这些传感器数据来开发新的个性化舒适模型。 (C)2016 Elsevier Ltd.保留所有权利。

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