The Academic Perspective Procedia publishes Academic Platform symposiums papers as three volumes in a year. DOI number is given to all of our papers.
Publisher : Academic Perspective
Journal DOI : 10.33793/acperpro
Journal eISSN : 2667-5862
[1] Elaouzy, Y., & Fadar, E. (2022). Impact of key bioclimatic design strategies on buildings' performance in dominant climates worldwide. Energy for Sustainable Development. https://doi.org/10.1016/j.esd.2022.05.006.
[2] Rodriguez-Ubinas, E., Montero, C., Porteros, M., Vega, S., Navarro, I., Castillo-Cagigal, M., Matallanas, E., & Gutiérrez, Á. (2014). Passive design strategies and performance of Net Energy Plus Houses. Energy and Buildings, 83, 10-22. https://doi.org/10.1016/J.ENBUILD.2014.03.074.
[3] Negi, A. (2021). Green Buildings: Strategies for Energy-Efficient and Eco-Friendly Designs. Mathematical Statistician and Engineering Applications. https://doi.org/10.17762/msea.v70i1.2524.
[4] Olatunde, T., Okwandu, A., Akande, D., & Sikhakhane, Z. (2024). Energy efficiency in architecture: Strategies and technologies. Open Access Research Journal of Multidisciplinary Studies. https://doi.org/10.53022/oarjms.2024.7.2.0024.
[5] Chen, X., Vand, B., & Baldi, S. (2024). Challenges and Strategies for Achieving High Energy Efficiency in Building Districts. Buildings. https://doi.org/10.3390/buildings14061839.
[6] Hafez, F., Sa'di, B., Safa-Gamal, M., Taufiq-Yap, Y., Alrifaey, M., Seyedmahmoudian, M., Stojcevski, A., Horan, B., & Mekhilef, S. (2023). Energy Efficiency in Sustainable Buildings: A Systematic Review with Taxonomy, Challenges, Motivations, Methodological Aspects, Recommendations, and Pathways for Future Research. Energy Strategy Reviews. https://doi.org/10.1016/j.esr.2022.101013.
[7] Okwandu, A., Akande, D., & Nwokediegwu, Z. (2024). Sustainable architecture: Envisioning self-sustaining buildings for the future. International Journal of Management & Entrepreneurship Research. https://doi.org/10.51594/ijmer.v6i5.1098.
[8] Ragheb, A., El-Shimy, H., & Ragheb, G. (2016). Green Architecture: A Concept of Sustainability. Procedia - Social and Behavioral Sciences, 216, 778-787. https://doi.org/10.1016/J.SBSPRO.2015.12.075.
[9] Korjenic, A., Petránek, V., Zach, J., & Hroudová, J. (2011). Development and performance evaluation of natural thermal-insulation materials composed of renewable resources. Energy and Buildings, 43, 2518-2523. https://doi.org/10.1016/J.ENBUILD.2011.06.012.
[10] Luo, W. (2020). Analysis of Strengthening the Application of External Wall Insulation Materials in Green Building Energy Saving Project. , 3, 32. https://doi.org/10.18282/ims.v3i2.349.
[11] Attia, S., Gratia, E., Herde, A., & Hensen, J. (2012). Simulation-based decision support tool for early stages of zero-energy building design. Energy and Buildings, 49, 2-15. https://doi.org/10.1016/J.ENBUILD.2012.01.028.
[12] Del Ama Gonzalo, F., Santamaría, B., & Burgos, M. (2023). Assessment of Building Energy Simulation Tools to Predict Heating and Cooling Energy Consumption at Early Design Stages. Sustainability. https://doi.org/10.3390/su15031920.