Simulation of an energy-efficient cool roof with cellulose-based daytime radiative cooling material
Tài liệu tham khảo
AMEE, Efficacité énergétique dans le bâtiment, https://www.amee.ma/fr/expertise/batiment. (n.d.).
International Energy Agency, Cooling, https://www.iea.org/reports/cooling. (n.d.).
U.S. Environmental Protection Agency, Understanding Global Warming Potentials, https://www.epa.gov/ghgemissions/understanding-global-warming-potentials. (n.d.).
United nations industrialdevelopment organization, The Montreal Protocol evolves to fight climate change, https://www.unido.org/our-focus-safeguarding-environment-implementation-multilateral-environmental-agreements-montreal-protocol/montreal-protocol-evolves-fight-climate-change. (n.d.).
Song, 2021, A review on conventional passive cooling methods applicable to arid and warm climates considering economic cost and efficiency analysis in resource-based cities, Energy Rep., 7, 2784, 10.1016/j.egyr.2021.04.056
Carlosena, 2021, Experimental development and testing of low-cost scalable radiative cooling materials for building applications, Solar Energy Mater. Sol. Cells, 230, 10.1016/j.solmat.2021.111209
Zhao, 2019, Radiative sky cooling: fundamental principles, materials, and applications, Appl. Phys. Rev., 6, 021306, 10.1063/1.5087281
Raman, 2014, Passive radiative cooling below ambient air temperature under direct sunlight, Nature, 515, 540, 10.1038/nature13883
Jeong, 2020, Field investigation of a photonic multi-layered TiO2 passive radiative cooler in sub-tropical climate, Renew. Energy, 146, 44, 10.1016/j.renene.2019.06.119
Jaramillo‐Fernandez, 2022, Highly-scattering cellulose-based films for radiative cooling, Adv. Sci., 9, 2104758, 10.1002/advs.202104758
Li, 2021, Ultrawhite BaSO4Paints and films for remarkable daytime subambient radiative cooling, ACS Appl. Mater. Interfaces, 13, 21733, 10.1021/acsami.1c02368
Baniassadi, 2019, Potential energy and climate benefits of super-cool materials as a rooftop strategy, Urban Climate, 29, 10.1016/j.uclim.2019.100495
Anand, 2021, The relative role of solar reflectance and thermal emittance for passive daytime radiative cooling technologies applied to rooftops, Sustain. Cities Soc., 65, 10.1016/j.scs.2020.102612
Cheng, 2021, Optical properties and cooling performance analyses of single-layer radiative cooling coating with mixture of TiO2 particles and SiO2 particles, Sci. China Technol. Sci., 64, 1017, 10.1007/s11431-020-1586-9
J.; Wang, H.; Song, L.; Ren, M.E.; Talukder, S.; Chen, J. Shao, L. Lucia, T. Matsuura, J. Wang, H. Song, L. Ren, E. Talukder, S. Chen, J. Shao, Study on the Preparation of Cellulose Acetate Separation Membrane and New Adjusting Method of Pore Size, Membranes (Basel). 12 (2021). https://doi.org/10.3390/membranes
Li, 2022, Protecting ice from melting under sunlight via radiative cooling, Sci. Adv., 8
Ghalia, 2016, 141
Farooq, 2021, Emerging radiative materials and prospective applications of radiative sky cooling - a review, Renew. Sustain. Energy Rev., 144, 10.1016/j.rser.2021.110910
Houda ENNACERI, Nano-Coating of CSP Reflectors: A Step towards the Creation of a Self-Cleaning Effect, PhD, Faculty of Sciences, Mohammed V University,Rabat, 2016.
Gentle, 2010, Radiative heat pumping from the earth using surface phonon resonant nanoparticles, Nano Lett., 10, 373, 10.1021/nl903271d
Lawrence, 2019, High-performance buildings simplified : designing, constructing, and operating sustainable commercial buildings, ASHRAE
LEED, Heat island reduction: Green infrastructure and buildings, https://www.usgbc.org/credits/neighborhood-development-plan-neighborhood-development/v4-draft/gibc-9. (n.d.).