[1]. https://www.eia.gov/international/overview/country/EGY. (Accessed on: May. 2021).
[3]. Energy Technology Perspectives 2016. Towards Sustainable Urban Energy Systems. Available at:
www.iea.org/publications/, Accessed on: May. 2021)
[4]. M. Biazen. The value of urban green infrastructure and its environmental response in urban ecosystem: A literature review. International Journal of Environmental Sciences 2015;4(2):89-101
[5]. John W. Dover. Green Infrastructure: Incorporating plants and enhancing biodiversity in buildings and urban environments. ISBN 978-0-415-5213-9. Routledge, 2015.
[6]. Perini et al., Vertical greening system: a process tree for green facades and living walls, Urban Ecosystems, p. 1:3, doi: 10.1007/s11252-012-0262-3, 2012.
[7]. Olivieri, F., Grifoni, R. C., Redondas, D., Sánchez-Reséndiz, J. A., and Tascini, S., “An Experimental Method to Quantitatively Analyse the Effect of Thermal Insulation Thickness on the Summer Performance of a Vertical Green Wall”, Energy and Buildings, Vol. 150, pp. 132-148, 2017
[8]. Flores Larsen, S., Filippín, C., and Lesino, G., “Modeling Double Skin Green Facades with Traditional Thermal Simulation Software”, Solar Energy, Vol. 121, pp. 56-67, 2015.
[9]. Coma, J., G. Pérez, de Gracia, A., Burés, S., Urrestarazu, M., and Cabeza, L. F., “Vertical Greenery Systems for Energy Savings in Buildings: A Comparative Study Between Green Walls and Green Facades”, Building and Environment, Vol. 111, pp. 228-237, 2017.
[10]. Loh S., Stav Y., Green City Grow a Wall: in proceeding of subtropical cities 2008conference, p. 6, 2008
[11]. Manso, M.; Castro-Gomes, J. Green Wall Systems: A Review of their Characteristics. Renew. Sustain. Energy Rev. 2015, 41, 863–87
[12]. Pérez, G.; Coma, J.; Martorell, I.; Cabeza, L.F. Vertical Greenery Systems (VGS) for Energy Saving in Buildings: A Review. Renew. Sustain. Energy Rev. 2014, 39, 139–165.
[13]. G. Pérez, L. Rincón, A. Vila, J.M. González, L.F. Cabeza. Green vertical systems for buildings as passive systems for energy savings. Applied Energy 2011; 88:4854-4859)
[14]. Susorova, I.; Bahrami, P. Facade-Integrated Vegetation as an Environmental Sustainable Solution for Energy-Efficient Buildings; MADE Research Journal of Cardiff University: Cardiff, UK, 2013; pp. 6–14.
[15]. Perini, K.; Ottelé, M.; Haas, E.M.; Raiteri, R. Greening the Building Envelope, Facade Greening and Living Wall Systems. Open J. Ecol. 2011, 1, 1–8
[17]. Blanc, P. The Vertical Garden: From Nature to the City, 1st ed.; W. W. Norton Company: New York, NY, USA, 2008; ISBN1 -13 978-0393733792. ISBN2 -10 0393733793.
[18]. Pérez-Urrestarazu, L.; Fernández-Cañero, R.; Franco-Salas, A.; Egea, G. Vertical Greening Systems and Sustainable Cities. J. Urban Technol. 2016, 22, 65–68.
[19]. Zarandi, M.M., & Pourmousa, M., A comparative study on details of green walls in different climates, 2018.
[20]. Feng, Y.; Feng, Y.; Feng, Q.; Zhi, Z.; Jiawei, Y. Summertime Thermal and Energy Performance of a Double-Skin Green Facade: A Case Study in Shanghai. Sustain. Cities Soc. 2018, 39, 43–51.
[21]. Elgizawy, Ebtesam. The Effect of Green Facades in Landscape Ecology. Procedia Environmental Sciences, 2018. 34. 119-130. 10.1016/j.proenv.2016.04.012.
[22]. S A Palermo and M Turco, Green Wall systems: where do we stand? 2020
[23]. Johnston, J.; Newton, J. Building Green: A Guide for Using Plants on Roofs, Walls and Pavements, 1st ed.; Greater London Authority: London, UK, 1996; ISBN 1852616377
[25]. http://www.livingwallart.com/page/4/ (Accessed Oct. 2021)
[26]. Ottelé, M.; Perini, K.; Fraaij, A.L.A.; Haas, E.M.; Raiteri, R. Comparative Life Cycle Analysis for Green Facades and Living Wall Systems. Energy Build. 2011, 43, 419–3429
[28]. https://lushlivingwalls.com/ (Accessed Oct. 2018)
[29]. Egea, Gregorio & Perez Urrestarazu, L. & González-Pérez, Julio & Franco-Salas, Antonio & Fernández-Cañero, Rafael. Lighting systems evaluation for indoor living walls, 2014. Urban Forestry & Urban Greening. 13. 10.1016/j.ufug.2014.04.009.
[30]. Medl, A.; Stangl, R.; Florineth, F. Vertical Greening Systems—A Review on Recent Technologies and Research Advancement. Build. Environ. 2017, 125, 227–239
[31]. Marwa Hisham El-Zoklah and Tamer Refaat. "How to measure the green façades environmental effectiveness? a proposal to green façade systems technical guide." International Journal of Sustainable Building Technology and Urban Development 12.2 (2021): 154-169. Print. doi:10.22712/susb.20210013
[36]. Yoshimi, Juri & Altan, Haşim. (2011). Thermal simulations on the effects of vegetated walls on indoor building environments. Proceedings of Building Simulation 2011: 12th Conference of International Building Performance Simulation Association.
[37]. Nojima, Y., Okinaka, T. et al. 1993. Covering effects of climbing plants on wall temperature of concrete building, technical bulletin, Faculty of horticulture, Chiba University, 48: 125-134
[38]. Nojima, Y. and Suzuki, H. 2004. The Effect of the Wall Greenery for the Reduction of the Heat Flux and the Accumulated Volume of Heat Flow toward Indoor from the Wall in Summer, The Japanese Institute of Landscape Architecture 67(5):447-452.
[39]. https://civilsir.com/weight-of-4-6-8-10-and-12-solid-hollow-concrete-block/#:~:text=A%20full%20size%20standard%208,%2Fm3%20or%20134lbs%2Fft3. (Accessed Jun. 2022)
[41]. Ivan Julio Apolonio Callejas et. al, Thermal resistance and conductivity of recycled construction and demolition waste (RCDW) concrete blocks, Civil Engineering, REM, Int. Eng. J. 70 (2), 2017
[42]. Elkhiary, A. M., Fekry, A., Hassan, A., Desouky, R., “Double Skin Facade in Office Buildings: Simulation for Evaluationg Energy Performance in Hot Climate”, Journal of Engineering and Applied Science, Vol. 64, No. 5, pp. 325- 343, 2017
[43]. Design Builder Official Website, https://www.designbuilder.co.uk, (Access on: November 2017)