Journal of Shanghai Jiaotong University >
Thermal Environment Monitoring and Analysis of an Enclosed Gymnasium with Double-Layered Membrane Roof in Summer
Received date: 2021-07-12
Revised date: 2021-11-08
Accepted date: 2021-12-16
Online published: 2023-03-01
The membrane structure roof is widely used in large-span buildings such as stadiums and gymnasiums because of its full use of natural light sources and flexible forms. In order to solve the prominent problems such as poor thermal insulation performance and prone to external environmental factors, the multi-layer membrane structure design, laying of insulation layers, and other schemes are applied to engineering practice. However, there is still a gap in the relevant research of thermal environment monitoring and analysis. In order to study the thermal environment of the double-layer PTFE (polytetrafluoroethylene)-aerogel roof, multi-point thermometers were uniformly arranged to monitor, and the overall temperature field was constructed using the measured data. A thermophysical model which could accurately reflect the change of temperature field was established, whose average error was less than 5%. With the laying of roof insulation layer as the variable, three working conditions, i.e., no insulation layer, only rock wool insulation layer, and all aerogel insulation layer were constructed based on the model. The comparison indicates that the laying of aerogel reduces the average temperature of indoor space by 2.0 ℃, the original working condition has the best thermal insulation effect, and the average temperature difference between indoor and outdoor is 9.6 ℃. This paper can provide reference for the thermal insulation design of membrane structure roofs.
Key words: membrane structure; thermal environment; enclosed gymnasium; aerogel
SONG Yinbo, YIN Yue, YAN Yongsheng, WANG Xiaoqing, CHEN Wujun, REN Sijie . Thermal Environment Monitoring and Analysis of an Enclosed Gymnasium with Double-Layered Membrane Roof in Summer[J]. Journal of Shanghai Jiaotong University, 2023 , 57(2) : 183 -193 . DOI: 10.16183/j.cnki.jsjtu.2021.259
[1] | GURLICH D, REBER A. Daylight performance of a translucent textile membrane roof with thermal insulation[J]. Buildings, 2018, 8(9): 118-137. |
[2] | HU J H, CHEN W J. Safety and serviceability of membrane buildings: A critical review on architectural, material and structural performance[J]. Engineering Structures, 2020, 210: 110292. |
[3] | LIU H B, LI B. Solar radiation properties of common membrane roofs used in building structures[J]. Materials & Design, 2016, 105: 268-277. |
[4] | TIAN G J, FAN Y S. Analysis of solar radiation heat transfer of architectural fabric membrane material[J]. Journal of Engineered Fibers and Fabrics, 2020, 15(2): 1-6. |
[5] | HU J H, CHEN W J. Thermal characteristics and comfort assessment of enclosed large-span membrane stadiums[J]. Applied Energy, 2018, 229: 728-735. |
[6] | TIAN G J, FAN Y S. Indoor thermal environment of thin membrane structure buildings: A review[J]. Energy and Buildings, 2021, 234: 110704. |
[7] | ZHANG T T, TAN Y F. The application of air layers in building envelopes: A review[J]. Applied Energy, 2016, 165: 707-734. |
[8] | TANG H D, ZHANG T. On-site measured performance of a mechanically ventilated double etfe cushion structure in an aquatics center[J]. Solar Energy, 2018, 162: 289-299. |
[9] | SUO H, ANGELOTTI A. Thermal-physical behavior and energy performance of air-supported membranes for sports halls: A comparison among traditional and advanced building envelopes[J]. Energy and Buildings, 2015, 109: 35-46. |
[10] | KOSTIC D, MILOSEVIC V. Influence of single and double membrane roofs on thermal behaviour of enclosed space[J]. Tehnicki Vjesnik-Technical Gazette, 2018, 25: 188-196. |
[11] | GHANI S, ELBIALY E A. Thermal performance of sta-dium’s field of play in hot climates[J]. Energy and Buildings, 2017, 139: 702-718. |
[12] | FANTUCCI S, FENOGLIO E. Development of an aerogel-based thermal coating for the energy retrofit and the prevention of condensation risk in existing buildings[J]. Science and Technology for the Built Environment, 2019, 25(9): 1178-1186. |
[13] | GAO T, IHARA T. Perspective of aerogel glazings in energy efficient buildings[J]. Building and Environment, 2016, 95: 405-413. |
[14] | BURATTI C, BELLONI E. Aerogel glazing systems for building applications: A review[J]. Energy and Buildings, 2021, 231: 110587. |
[15] | SADINENI S B, MADALA S. Passive building energy savings: A review of building envelope components[J]. Renewable & Sustainable Energy Reviews, 2011, 15(8): 3617-3631. |
/
〈 |
|
〉 |