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Analysis of the Energy and Environmental Sustainability of a Built Space System: The Case of Patte d’Oie University Campus in Ouagadougou

DOI: 10.4236/epe.2024.165010, PP. 197-215

Keywords: Energy Function, Energy Class, Carbon Footprint, Built Space, Consumption Item, Systemic Approach, Typological Approach

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Abstract:

The aim of this study was to carry out a dynamic simulation of the energy and environmental performance of a built space system, with a view to assessing its energy and environmental class. The use of a simulation and modeling tool, supported by various methodological references, formed the basis of our approach. Adopting a systemic perspective, we described the structural and functional aspects of the systems making up built spaces, as well as the associated energy flows. Our approach was also based on a typology, taking into account typical days, structural and functional configurations at different scales and angles of observation. The analysis tool we developed in Java was applied to the built space system of the Patte d’Oie university campus in Ouagadougou. Annual electricity consumption was measured at 124387.34 kWh, closely aligned with the average annual electricity bill (125224.31 kWh), with a maximum relative deviation of 1%, followed by a carbon emission balance of 58337.66 kg eq CO2 per year. This validation confirmed the effectiveness of our tool. In addition, following the analysis of electricity consumption using our tool, the university campus was classified in energy class B and environmental class C. These results will be based on the emission factors of the energy mix of the West African Economic and Monetary Union (WAEMU) territory, with particular emphasis on Burkina Faso.

References

[1]  IEA (2015) CO2 Reduction Projections to 2035: Annual Report. World Energy Statistics/Enerdata.
[2]  Ministry of Energy, Mines and Careers (MEMC) (2018) Strategy in the Field of Energy. MEMC, Ouagadougou, Burkina Faso.
[3]  Kreiner, H., Passer, A. and Wallbaum, H. (2015) A New Systemic Approach to Improve the Sustainability Performance of Office Buildings in the Early Design Stage. Energy Build, 109, 385-396.
https://doi.org/10.1016/j.enbuild.2015.09.040
[4]  Ranjaranimaro, M.P. (2019) Evaluation of Environmental Quality, Energy Functioning of Built Spaces in Madagascar: Application of Simulation Tools on a University Site in Antsiranana. PhD Thesis, The University of Reunion and The University of Antsiranana.
[5]  Bernal, K.V. (2007) Evaluation of Energy Consumption at the Urban Fragment Scale. Report, Stage Master STEU Ecole Mines Nantes, France.
[6]  Florio, P. and Teissier, O. (2015) Estimation of the Energy Performance Certificate of a Housing Stock Characterised via Qualitative Variables through a Typology-Based Approach Model: A Fuel Poverty Evaluation Tool. Energy Build, 89, 39-48.
https://doi.org/10.1016/j.enbuild.2014.12.024
[7]  Karimpour, M., Belusko, M., Xing, K. and Bruno, F. (2014) Minimising the Life Cycle Energy of Buildings: Review and Analysis. Building and Environment, 73, 106-114.
https://doi.org/10.1016/j.buildenv.2013.11.019
[8]  Le Moigne, J.J. (1977) The Theory of the General System: Theory of Modeling. Presses Universitaire de France, Paris.
[9]  Gracceva, F. and Zeniewsk, P. (2014) A Systemic Approach to Assessing Energy Security in Low-Carbon EU Energy System. Elsevier.
https://doi.org/10.1016/j.apenergy.2013.12.018
[10]  2012 Thermal Regulations.
https://www.rt2012-leguide.com/
[11]  Yaya, S. (2020) Directive N°04/2020/CM/UEMOA on the Energy Labelling of Electric Lamps and New Household Electrical Appliances in UEMOA Member States. WAEMU/UEMOA, Lomé, Togo.
[12]  Yaya, S. (2020) Directive N°05/20207CM/UEMOA Laying down Energy Efficiency Measures in the Construction of Buildings in WAEMU Member States. WAEMU/UEMOA, Lomé, Togo
[13]  Vorger, E., et al. (2014) Investigating the Influence of Occupants on the Energy Performance of Dwellings through Global Stochastic Modelling. IBPSA France-Arras Conference, Arras, 20-21 May 2014.
[14]  International Energy Agency (2013) CO2 Emissions from Fuel Combustion. International Energy Agency, Paris.
[15]  Coulibaly, O. (2011) Contribution to the Development of Thermal and Energy Regulations for Buildings in Burkina Faso: Multiparametric Basic Data and Thermo-Aeraulic Modeling Using CoDyBa and TRNSYS. Unique PhD Thesis, Joseph KI-ZERBO University, Ouagadougou, Burkina Faso.

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