Numerical investigation of a smart window system with thermotropic Parallel Slat Transparent Insulation Material for building energy conservation and daylight autonomy
Publication type: Journal Article
Publication date: 2021-10-01
scimago Q1
wos Q1
SJR: 1.858
CiteScore: 14.3
Impact factor: 7.6
ISSN: 03601323, 1873684X
Environmental Engineering
Building and Construction
Civil and Structural Engineering
Geography, Planning and Development
Abstract
Smart window designs have emerged as a means of providing dynamic regulation of solar energy and daylight, enhancing indoor comfort, and achieving building energy conservation. We evaluated a novel window design that integrated a thermotropic (TT) material and Transparent Insulation Material (TIM) and present the investigation in this paper. The Parallel Slat TIM (PS-TIM) structure contained within the window unit provides extra thermal resistance and helps to redirect daylight. The TT material, which is applied to the slats, provides automatic daylight and solar adjustment. Firstly, the TT PS-TIM window system has been characterised thermally and optically. Then, a comprehensive approach including both building energy and daylight simulation packages was used to predict building performance. The effects of geometry (i.e. slat spacing and slat tilt angle) and thermotropic features (i.e. transition temperature and optical properties) on building performance were investigated. The simulation results show that use of TT PS-TIM window system with carefully selected features can simultaneously improve building energy efficiency (up to 22% saving when compared with a conventional double-glazed (DG) window) and attain homogenous daylight distribution with an average Useful Daylight Illuminance, UDI 500–2000 lux , of 52.2%. It was also found that both the geometric configurations and thermotropic features of a TT PS-TIM have significant influence on energy and daylight performance. TT PS-TIM with horizontally placed slats performs better than the unit with tilted slats, in terms of balance between energy efficiency and daylight availability. This research provides design guidance and material development suggestions for integration of this novel window system in buildings. • TT PS-TIM smart window provides building energy conservation and daylight autonomy. • The impacts of geometric configurations and thermotropic features of TT PS-TIM are studied. • Up to 22% building energy saving can be achieved under the selected London climate. • Daylight quality is significantly improved through applying the TT PS-TIM window. • A comprehensive and rigorous method is developed to evaluate novel complex system.
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Total citations:
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Citations from 2024:
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(54.34%)
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GOST
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Sun Y. et al. Numerical investigation of a smart window system with thermotropic Parallel Slat Transparent Insulation Material for building energy conservation and daylight autonomy // Building and Environment. 2021. Vol. 203. p. 108048.
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Sun Y., Wilson R., Liu H., Wu Y. Numerical investigation of a smart window system with thermotropic Parallel Slat Transparent Insulation Material for building energy conservation and daylight autonomy // Building and Environment. 2021. Vol. 203. p. 108048.
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TY - JOUR
DO - 10.1016/j.buildenv.2021.108048
UR - https://doi.org/10.1016/j.buildenv.2021.108048
TI - Numerical investigation of a smart window system with thermotropic Parallel Slat Transparent Insulation Material for building energy conservation and daylight autonomy
T2 - Building and Environment
AU - Sun, Yanyi
AU - Wilson, Robin
AU - Liu, Hao
AU - Wu, Yupeng
PY - 2021
DA - 2021/10/01
PB - Elsevier
SP - 108048
VL - 203
SN - 0360-1323
SN - 1873-684X
ER -
Cite this
BibTex (up to 50 authors)
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@article{2021_Sun,
author = {Yanyi Sun and Robin Wilson and Hao Liu and Yupeng Wu},
title = {Numerical investigation of a smart window system with thermotropic Parallel Slat Transparent Insulation Material for building energy conservation and daylight autonomy},
journal = {Building and Environment},
year = {2021},
volume = {203},
publisher = {Elsevier},
month = {oct},
url = {https://doi.org/10.1016/j.buildenv.2021.108048},
pages = {108048},
doi = {10.1016/j.buildenv.2021.108048}
}