Cite

F. Ascione, N. Bianco, F. de Rossi, F. Iovne, and G. M. Mauro, Are transparent double-skin facades effective for energy retrofit? Answers for an office building-with and without photovoltaic integration, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 44.1 (2022) 257-271. Search in Google Scholar

A. Sofi, and F. Genovese, Stochastic analysis of double-skin façades subjected to imprecise seismic excitation, Materials Research Proceedings, 26 (2023) 555-560. Search in Google Scholar

B. Charles, F. Bode, and C. Croitoru, Numerical simulation investigation of a double skin transpired solar air collector, Applied Sciences, 12.1 (2022) 520. Search in Google Scholar

A. M. Khorasgani,N. Zare, and A. Rodriguez, Using IoT in Double Skin Facades toward Thermal Comfort: A Review, Urban Planning and Construction, 2.1 (2024) 1-10. Search in Google Scholar

M. Bugarin, S. Nizetic, M. Bugarin, B. Bralic, and M. Omazic, Innovative approaches in energy efficiency evaluation of glazed facades in nZEB buildings, 7th International Conference on Smart and Sustainable Technologies (SpliTech). IEEE, (2022) 1-5. Search in Google Scholar

W. Shen, T. Ming, Y. Ding, Y. Wu, and R.K. de_Richter, Numerical analysis on an industrial-scaled solar updraft power plant system with ambient crosswind, Renewable energy, 68 (2014) 662-676. Search in Google Scholar

T. Ming, Y. Wu, R. K. de_Richter, W. Liu, and S. A. Sherif, Solar updraft power plant system: A brief review and a case study on a new system with radial partition walls in its collector, Renewable and Sustainable Energy Reviews, 69 (2017) 472-487. Search in Google Scholar

G. E. Lau, V. Timoshenko, J. Reizes, M. Fossa, and G. H. Yeoh, Natural convection in an asymmetrically-heated open-ended channel: a three-dimensional computational study, Heat Transfer Summer Conference. American Society of Mechanical Engineers, 55492 (2013). Search in Google Scholar

G. Gan, and S. B. Riffat, A numerical study of solar chimney for natural ventilation of buildings with heat recovery, Applied Thermal Engineering, 18.12 (1998) 1171-1187. Search in Google Scholar