Thermal comfort prediction using normalized skin temperature in a uniform built environment

Thermal comfort prediction can be instrumental in bridging the gap between energy efficiency and occupants’ comfort by utilizing the predicted thermal state (Discomfort/Comfort) of occupant as a control criterion for the cooling systems in buildings. Skin temperature, through its heat-transfer prope...

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Main Authors: Chaudhuri, Tanaya, Zhai, Deqing, Soh, Yeng Chai, Li, Hua, Xie, Lihua
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2018
Subjects:
Online Access:https://hdl.handle.net/10356/88311
http://hdl.handle.net/10220/44835
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-883112021-01-20T03:09:01Z Thermal comfort prediction using normalized skin temperature in a uniform built environment Chaudhuri, Tanaya Zhai, Deqing Soh, Yeng Chai Li, Hua Xie, Lihua School of Electrical and Electronic Engineering School of Mechanical and Aerospace Engineering Interdisciplinary Graduate School (IGS) Energy Research Institute @ NTU (ERI@N) Thermal Comfort Predicted Thermal State Model Thermal comfort prediction can be instrumental in bridging the gap between energy efficiency and occupants’ comfort by utilizing the predicted thermal state (Discomfort/Comfort) of occupant as a control criterion for the cooling systems in buildings. Skin temperature, through its heat-transfer properties, plays a significant role in the thermoregulation principle that governs thermal comfort. This paper presents a method termed as Predicted Thermal State (PTS) model, which uses the peripheral skin temperature and its gradient features from a single body location to evaluate the thermal state. The model introduces a novel normalization process to resolve both inter and intra individual differences by incorporating body surface area and clothing insulation, respectively. Human subject experiments were conducted, during which each subject’s skin temperatures and respective thermal sensation surveys were recorded while environmental conditions varied from cold/cool-to-neutral levels (18–27◦C). This study revealed that the combined information of skin temperature and its gradient carry significant potential to establish the thermal state. Four model input cases were compared using Support Vector Machine (SVM) and Extreme Learning Machine (ELM) based classifiers. While non-normalized skin temperature alone could accurately estimate only about 65% of thermal states, the PTS model based on normalized skin features accurately predicted 87% of thermal states. 2018-05-18T06:31:41Z 2019-12-06T17:00:27Z 2018-05-18T06:31:41Z 2019-12-06T17:00:27Z 2017 Journal Article Chaudhuri, T., Zhai, D., Soh, Y. C., Li, H., & Xie, L. (2018). Thermal comfort prediction using normalized skin temperature in a uniform built environment. Energy and Buildings, 159, 426-440. 0378-7788 https://hdl.handle.net/10356/88311 http://hdl.handle.net/10220/44835 10.1016/j.enbuild.2017.10.098 en Energy and Buildings © 2017 Elsevier.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Thermal Comfort
Predicted Thermal State Model
spellingShingle Thermal Comfort
Predicted Thermal State Model
Chaudhuri, Tanaya
Zhai, Deqing
Soh, Yeng Chai
Li, Hua
Xie, Lihua
Thermal comfort prediction using normalized skin temperature in a uniform built environment
description Thermal comfort prediction can be instrumental in bridging the gap between energy efficiency and occupants’ comfort by utilizing the predicted thermal state (Discomfort/Comfort) of occupant as a control criterion for the cooling systems in buildings. Skin temperature, through its heat-transfer properties, plays a significant role in the thermoregulation principle that governs thermal comfort. This paper presents a method termed as Predicted Thermal State (PTS) model, which uses the peripheral skin temperature and its gradient features from a single body location to evaluate the thermal state. The model introduces a novel normalization process to resolve both inter and intra individual differences by incorporating body surface area and clothing insulation, respectively. Human subject experiments were conducted, during which each subject’s skin temperatures and respective thermal sensation surveys were recorded while environmental conditions varied from cold/cool-to-neutral levels (18–27◦C). This study revealed that the combined information of skin temperature and its gradient carry significant potential to establish the thermal state. Four model input cases were compared using Support Vector Machine (SVM) and Extreme Learning Machine (ELM) based classifiers. While non-normalized skin temperature alone could accurately estimate only about 65% of thermal states, the PTS model based on normalized skin features accurately predicted 87% of thermal states.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Chaudhuri, Tanaya
Zhai, Deqing
Soh, Yeng Chai
Li, Hua
Xie, Lihua
format Article
author Chaudhuri, Tanaya
Zhai, Deqing
Soh, Yeng Chai
Li, Hua
Xie, Lihua
author_sort Chaudhuri, Tanaya
title Thermal comfort prediction using normalized skin temperature in a uniform built environment
title_short Thermal comfort prediction using normalized skin temperature in a uniform built environment
title_full Thermal comfort prediction using normalized skin temperature in a uniform built environment
title_fullStr Thermal comfort prediction using normalized skin temperature in a uniform built environment
title_full_unstemmed Thermal comfort prediction using normalized skin temperature in a uniform built environment
title_sort thermal comfort prediction using normalized skin temperature in a uniform built environment
publishDate 2018
url https://hdl.handle.net/10356/88311
http://hdl.handle.net/10220/44835
_version_ 1690658343922696192