Above -roof air temperature effects on HVAC and cool roof performance: Experiments and development of a predictive model

被引:11
|
作者
Green, Alan [1 ]
Gomis, Laia Ledo [1 ]
Paolini, Riccardo [2 ]
Haddad, Shamila [2 ]
Kokogiannakis, Georgios [1 ]
Cooper, Paul [1 ]
Ma, Zhenjun [1 ]
Kosasih, Buyung [1 ]
Santamouris, Mattheos [2 ]
机构
[1] Univ Wollongong, Sustainable Bldg Res Ctr, Wollongong, NSW 2522, Australia
[2] Univ New South Wales, Fac Built Environm, Sydney, NSW 2052, Australia
关键词
CONVECTIVE HEAT-TRANSFER; RESIDENTIAL BUILDINGS; TRANSFER COEFFICIENTS; THERMAL PERFORMANCE; ENERGY; COATINGS; SIMULATION; REFLECTANCE; COMFORT;
D O I
10.1016/j.enbuild.2020.110071
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In building performance simulations it is typically assumed that outdoor HVAC equipment is exposed to air at the outdoor ‘ambient’ temperature, obtained from a weather file. However, in reality, significant spatial variations in the outdoor air temperature can exist close to buildings. This simplification may lead to significant errors, especially when comparing simulations of buildings with and without cool roofs, since the colder surface of the cool roof would reduce above-roof air temperatures, thereby influencing the energy consumption of rooftop HVAC equipment. Above-roof temperature variations were measured in detail at three shopping centre buildings, and the experimental data was used to develop a model that can estimate air temperatures above hot or cold roof surfaces. The model requires only four input variables, all of which are available in typical building simulation tools. Implementation of the model in a set of case-study simulations revealed that above-roof air temperatures can have a large effect on the predicted performance of cool roofs. In cases where cooling equipment and ventilation inlet ducts were both located on the roof, the electricity savings and gas ‘penalties’ attributable to cool roofs would have been underestimated by 44–85% (61% on average) if above-roof air temperature variations had not been modelled accurately. © 2020 Elsevier B.V.
引用
收藏
页数:13
相关论文
共 35 条
  • [1] Near-Roof Air Temperatures: Modelling the Implications for HVAC Performance and Cool Roofs
    Green, Alan
    Gomis, Laia Ledo
    Paolini, Riccardo
    Haddad, Shamila
    Kokogiannakis, Georgios
    Cooper, Paul
    Ma, Zhenjun
    Kosasih, Buyung
    Santamouris, Mattheos
    PROCEEDINGS OF BUILDING SIMULATION 2019: 16TH CONFERENCE OF IBPSA, 2020, : 1342 - 1348
  • [2] Performance evaluation of a cool roof model in composite climate
    Rawat, Mohan
    Singh, R. N.
    MATERIALS TODAY-PROCEEDINGS, 2021, 44 : 4956 - 4960
  • [3] A numerical study of the urban green roof and cool roof strategies' effects on boundary layer meteorology and ozone air quality in a megacity
    Zhong, Tianhao
    Zhang, Ning
    Lv, Mengyao
    ATMOSPHERIC ENVIRONMENT, 2021, 264
  • [4] Performance evaluation of a metamaterial-based new cool roof using improved Roof Thermal Transfer Value model
    Fang, Hong
    Zhao, Dongliang
    Yuan, Jinchao
    Aili, Ablimit
    Yin, Xiaobo
    Yang, Ronggui
    Tan, Gang
    APPLIED ENERGY, 2019, 248 : 589 - 599
  • [5] A numerical study of the urban green roof and cool roof strategies’ effects on boundary layer meteorology and ozone air quality in a megacity
    Zhong, Tianhao
    Zhang, Ning
    Lv, Mengyao
    Atmospheric Environment, 2021, 264
  • [6] Effects of a Cool Roof System on the Mitigation of Building Temperature: Empirical Evidence from a Field Experiment
    Park, Jaehong
    Lee, Sugie
    SUSTAINABILITY, 2022, 14 (08)
  • [7] Thermal Performance Test of a Phase-Change-Material Cool Roof System by a Scaled Model
    Yoon, Suk Goo
    Yang, Young Kwon
    Kim, Tae Won
    Chung, Min Hee
    Park, Jin Chul
    ADVANCES IN CIVIL ENGINEERING, 2018, 2018
  • [8] Integration of thermal insulation coating and moving-air-cavity in a cool roof system for attic temperature reduction
    Yew, M. C.
    Sulong, N. H. Ramli
    Chong, W. T.
    Poh, S. C.
    Ang, B. C.
    Tan, K. H.
    ENERGY CONVERSION AND MANAGEMENT, 2013, 75 : 241 - 248
  • [9] Effects of Roof-Edge Roughness on Air Temperature and Pollutant Concentration in Urban Canyons
    Amir A. Aliabadi
    E. Scott Krayenhoff
    Negin Nazarian
    Lup Wai Chew
    Peter R. Armstrong
    Afshin Afshari
    Leslie K. Norford
    Boundary-Layer Meteorology, 2017, 164 : 249 - 279
  • [10] Effects of building-roof cooling on flow and air temperature in urban street canyons
    Jae-Jin Kim
    Eric Pardyjak
    Do-Yong Kim
    Kyoung-Soo Han
    Byung-Hyuk Kwon
    Asia-Pacific Journal of Atmospheric Sciences, 2014, 50 : 365 - 375