INFLUÊNCIA DA SATURAÇÃO NAS PROPRIEDADES TÉRMICAS E ÓTICAS DE MATERIAIS POROSOS UTILIZADOS EM COBERTURAS
DOI:
https://doi.org/10.46421/entac.v18i.880Keywords:
Evaporative cooling, roofings, thermal and optical properties, energy efficiency in buildingsAbstract
Several publications have indicated the potential for reducing the thermal cooling load through the application of evaporative cooling on the building roofing. Such process consists in the dissipation of the heat absorbed in the form of latent heat, with the evaporation of water contained in porous materials. However, the absorption of water by porous materials causes a change in the thermal and optical properties of materials, related to heat absorption. Such changes may reduce the advantages of using evaporative cooling on roofings. In order to more accurately assess these variations in optical properties, the emittances, reflectances and SRIs of ceramic and fibre cement porous tiles, usually applied in the Brazilian civil construction market, were evaluated both in dry and saturated conditions. In general, there was an increase in emittance and a reduction in reflectance in all evaluated samples. Thus, with the results presented, new research on this topic can use more precise values in their estimations, implying, for example, more robust computer simulations.
References
ALCHAPAR, Noelia L.; CORREA, Erica N. Aging of roof coatings. Solar reflectance stability according to their morphological characteristics. Construction and Building Materials, v. 102, p. 297-305, 2016.
ASTM (AMERICAN SOCIETY FOR TESTING AND MATERIALS). C1371-15: Standard Test Method for Determination of Emittance of Materials Near Room Temperature Using Portable Emissometers. ASTM International, 2015.
______. E1980-11: Standard Practice for Calculating Solar Reflectance Index of Horizontal and Low-Sloped Opaque Surfaces. ASTM International, ASTM International, 2011.
______. E903-12: Standard Test Method for Solar Absorptance, Reflectance and Transmittance of Materials Using Integrating Spheres. ASTM International, 2012.
NAYAK, Ajaya Ketan; HAGISHIMA, Aya; TANIMOTO, Jun. A simplified numerical model for evaporative cooling by water spray over roof surfaces. Applied Thermal Engineering, [s.l.], v.
165, p.114-127, jan. 2020. Elsevier BV.
SANTAMOURIS, M. Cooling the cities – A review of reflective and green roof mitigation technologies to fight heat island and improve comfort in urban environments. Solar Energy, v.
103, p. 682 – 703, mai. 2014.
UEMOTO, Kai L.; SATO, Neide M. N., JOHN, Vanderley M. Estimating thermal performance of cool colored paints. Energy and Buildings, v. 42, n. 1, p. 17-22, 2010.
WANG, Junsong et al. Impacts of the water absorption capability on the evaporative cooling effect of pervious paving materials. Building And Environment, [s.l.], v. 151, p.187-197, mar. 2019. Elsevier BV.
ZHANG, Lei et al. Experimental study on the impact of mass moisture content on the evaporative cooling effect of porous face brick. Energy Efficiency, [s.l.], v. 9, n. 2, p.511-523, 6 ago. 2015. Springer Science and Business Media LLC.
ZHANG, Lei et al. Impact of post-rainfall evaporation from porous roof tiles on building cooling load in subtropical China. Applied Thermal Engineering, v. 142, p. 391-400, 2018.
ZHANG, Y. et al. Hydrological properties and solar evaporative cooling performance of porous clay tiles. Construction and Building Materials, v. 151, p. 9-17, 2017.