Dhahri, A., & Omri, A. (2013). A Review of Solar Chimney Power Generation Technology. <em>International Journal of Engineering and Advanced Technology, 2</em> (3), 1–17.
Humphries, M. (2001). <em>Solar Tower in Arizona to Power 150,000 Homes for 80 years</em>. GEEK. [Online]. Available: <ext-link ext-link-type="uri" xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://www.geek.com/geek-pick/solar-tower-in-arizona-to-power-150000-homes-for-80-years-1406459/">http://www.geek.com/geek-pick/solar-tower-in-arizona-to-power-150000-homes-for-80-years-1406459/</ext-link>
Tahar, T., & Djezzar, M. (2021). Numerical Simulation of Natural Convection in a Solar Chimney. <em>International Journal of Renewable Energy Research, 2</em> (4), 712–717.
Rabehi, R., Chaker, A., Aouachria, Z., & Tingzhen, M. (2017). CFD Analysis on the Performance of a Solar Chimney Power Plant System: Case Studying Algeria. <em>International Journal of Green Energy</em>, <em>14</em> (12), 971–982.
Hu, S., Leung, D. Y., Chen, M. Z., & Chan, J. C. (2016). Effect of Guide Wall on the Potential of a Solar Chimney Power Plant. <em>Renewable Energy, 96</em>, 209–219.
Gholamalizadeh, E., & Kim, M.-H. (2014). Three-Dimensional CFD Analysis for Simulating the Greenhouse Effect in Solar Chimney Power Plants Using a Two-Band Radiation Model. <em>Renewable Energy</em>, <em>63</em>, 498–506.
Cao, F., Li, H., Zhao, L., Bao, T., & Guo, L. (2013). Design and Simulation of the Solar Chimney Power Plants with TRNSYS. <em>Solar Energy, 98,</em> 23–33.
Djaouida, B., Aouachria, Z., Benmachiche, A. H., & Ali, S. (2020). Controlling Power Output of Solar Chimney Power Plant according to Demand. <em>International Journal of Ambient Energy, 41</em> (13), 1467–1481.
Ali, S., Djaouida, B., Benmachiche, A. H., & Aouachria, Z. (2021). Performance Analysis of a Solar Chimney Power Plant System in Two Algeria Regions. <em>International Journal of Ambient Energy, 43</em> (6), 1–26.
Ming, T., Wang, X., De Richter, R. K., Liu, W., Wu, T., & Pan, Y. (2012). Numerical Analysis on the Influence of Ambient Crosswind on the Performance of Solar Updraft Power Plant System. <em>Renewable and Sustainable Energy Reviews, 16</em> (8), 5567–5583.
Huang, H., Zhang, H., Huang, Y., & Lu, F. (2007). Simulation Calculation on Solar Chimney Power Plant System. <em>Challenges of Power Engineering and Environment</em>: Springer, 1158–1161.
Guo, P., Li, J., Wang, Y., & Wang, Y. (2015). Numerical Study on the Performance of a Solar Chimney Power Plant. <em>Energy Conversion and Management, 105,</em> 197–205.
Nasirivatan, S., Kasaeian, A., Ghalamchi, M., & Ghalamchi, M. (2015). Performance Optimization of Solar Chimney Power Plant Using Electric/Corona Wind. <em>Journal of Electrostatics, 78,</em> 22–30.
Ghalamchi, M., Kasaeian, A., Ghalamchi, M., & Mirzahosseini, A. H. (2016). An Experimental Study on the Thermal Performance of a Solar Chimney with Different Dimensional Parameters. <em>Renewable Energy, 91,</em> 477–483.
Li, Y., & Liu, S. (2014). Numerical Study on Thermal Behaviors of a Solar Chimney Incorporated with PCM. <em>Energy and Buildings, 80</em>, 406–414.
Attig, B.F., Guellouz, M.S., Sahraoui, M., & Kaddeche, S. (2015). A Numerical Study of Solar Chimney Power Plants in Tunisia. <em>Journal of Physics: Conference Series, 596</em> (1), 012006.
Akhtar, Z., & Rao, K.V.S. (2014). Study of economic viability of 200 MW solar chimney power plant in Rajasthan, India. <em>1st International Conference on Non-conventional Energy (ICONCE 2014),</em> (pp. 84–88). Kalyani, India.
Ould Khaoua, S.A. (2006). <em>Mod</em><em>é</em><em>lisation de l</em><em>’</em><em>a</em><em>é</em><em>ration naturelle et du microclimat des serres en verre de grande port</em><em>é</em><em>e sous climat temp</em><em>é</em><em>r</em><em>é oc</em><em>é</em><em>anique.</em> Thèse de Doctorat, Ecole Doctorale d’Angers.
Boulard, T., Kittas, C., Roy, J. C., & Wang, S. (2002). Convective and Ventilation Transfers in Greenhouses, Part 2: Determination of the Distributed Greenhouse Climate. <em>Biosyst</em><em>è</em><em>ms Engineering, 83</em> (2), 129–147.
Majdoubi, H., Boulard, T., Fatnassi, H., & Bouirden, L. (2009). Airflow and Microclimate Patterns in a One-Hectare Canary Type Greenhouse: An Experimental and CFD Assisted Study. <em>Agricultural and Forest Meteorology, 149,</em> 6–7.
Haxaire, R. (1999). <em>Caract</em><em>é</em><em>risation et mod</em><em>é</em><em>lisation des é</em><em>coulements d</em><em>’</em><em>air dans une serre</em>. Thèse de Doctorat, Université de Nice Sophia Antipolis.
Boulard, T., & Wang, S. (2002). Experimental and Numerical Studies on the Heterogeneity of Crop Transpiration in a Plastic Tunnel. <em>Computers and Electronics in Agriculture, 34</em>, 173–190.
Yaiche, M. R., Bouhanik, A., Bekkouche, S.M.A., Malek, A., & Benouaz, T. (2014). Revised Solar Maps of Algeria Based on Sunshine Duration. <em>Energy Conversion and Management, 82,</em> 114–23.
Mahapatra, A. K., Melton, S. L., & Isang, E. M. (2013). Effect of Moisture Content on Thermal Properties of Cowpea Flours. <em>Agric Eng Int: CIGR Journal, 15</em> (2).
Arku, A.Y., Aviara, N.A., & Ahamefula, S.C. (2012). Specific Heat of Selected Legumes and Cereal Grains Grown in North Eastern Nigeria. <em>Arid Zone Journal of Engineering, Technology and Environment, 8</em>, 105–114.
Appiah, F., Asibuo, J. Y., & Kumah, P. (2011). Physicochemical and Functional Properties of Bean Flours of Three Cowpea (Vigna unguiculata L. Walp) Varieties in Ghana. <em>African Journal of Food Science, 5</em> (2), 100–104.
Pretorius, J. P., & Kroger, D. G. (2008). Incorporating Vegetation under the Collector Roof of a Solar Chimney Power Plant. <em>R & D Journal, 24</em> (l), 3–11.
Wahid, A., Gelani, S., Ashraf, M., & Foolad, M. R. (2007). Heat Tolerance in Plants: An Overview. <em>Environmental and Experimental Botany, 61,</em> 199–223.