An assessment of the effect of wind flow on the indoor thermal condition of some buildings in Benin City, Nigeria

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Research Paper 17/07/2026
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An assessment of the effect of wind flow on the indoor thermal condition of some buildings in Benin City, Nigeria

Tashok, Yusuf Haruna*
J. Biodiv. & Environ. Sci. 29(1), 136-149, July 2026.
Copyright Statement: Copyright 2026; The Author(s).
License: CC BY-NC 4.0

Abstract

Natural ventilation plays a critical role in improving indoor thermal comfort and reducing reliance on mechanical cooling in hot-humid tropical environments. However, the influence of wind flow on indoor thermal conditions is strongly affected by building design and surrounding spatial characteristics, which remain insufficiently documented for residential buildings in Benin City, Nigeria. This study assessed the effect of wind flow on the indoor thermal conditions of selected residential buildings in five neighbourhoods of Benin City. A cross-sectional field survey involving 489 completed questionnaires was combined with field measurements of indoor temperature using a thermo-hygrometer and wind speed using a vane anemometer. Descriptive statistics, Pearson’s chi-square test, and Pearson’s correlation analysis were used to analyse the data. The results showed that 58.3% of buildings were oriented east-west, 63.2% of rooms had only one window, 80.2% of buildings lacked courtyards, and 76.7% were constructed with sand screed solid block walls. Most buildings (70.6%) were separated from neighbouring buildings by 3–6 m, while 56.0% had boundary wall setbacks of only 0.3–1.2 m. Ceiling fans were the predominant cooling method (85.1%), reflecting occupants’ dependence on mechanically assisted air movement. Wind speed exhibited a significant positive correlation with indoor temperature (r= 0.71, p = 0.041), indicating that wind alone did not guarantee improved indoor thermal conditions. The study concludes that indoor thermal comfort is determined by the combined effects of wind flow, building orientation, ventilation openings, spatial configuration, and plot characteristics. Integrating climate-responsive design principles into residential planning can enhance passive cooling, improve indoor thermal comfort, and reduce dependence on mechanical cooling in hot-humid tropical environments.

Ahmed AR, Gregor PH. 2014. Survey of air flow around multiple buildings. American Journal of Engineering and Environmental Engineering 2(1), 27–36. DOI: 10.11648/j.ajee.20140201.14

Aktan EÖ. 2014. Wind ventilation in the built environment. In: Energy Production and Management in the 21st Century II. WIT Transactions on Ecology and the Environment 190, 749–769.

Akubue JA. 2023. Investigation of airflow for natural ventilation in medium-rise housing in southeastern Nigeria. International Journal of Architecture, Arts and Applications 9(1), 13–21.

ASHRAE. 2023. ANSI/ASHRAE Standard 55-2023: Thermal Environmental Conditions for Human Occupancy. Atlanta, GA: American Society of Heating, Refrigerating and Air-Conditioning Engineers.

Awbi HB. 2021. Ventilation of Buildings. 3rd ed. London: Routledge.

Eseigbe JO. 2011. The impact of soil erosion on the physical landscape in the Benin Metropolis, Edo State, Nigeria. Unpublished PhD thesis, Department of Geography and Regional Planning, Ambrose Alli University, Ekpoma, Nigeria.

Iloeje NP. 1981. A New Geography of Nigeria. London: Longman Group Limited.

ISO. 1998. ISO 7726: Ergonomics of the Thermal Environment—Instruments for Measuring Physical Quantities. Geneva: International Organization for Standardization.

Lechner N. 2021. Heating, Cooling, Lighting: Sustainable Design Methods for Architects. 5th ed. Hoboken, NJ: John Wiley and Sons.

Li W, Xu X, Yao J, Chen Q, Sun Z, Yuan PF. 2024. Natural ventilation cooling effectiveness classification for building design addressing climate characteristics. Scientific Reports 14, 16168. DOI: 10.1038/s41598-024-66684-9

Linghu Y, Zhang H, Qin S, Gu Z, Yu CW. 2026. Influencing design factors of cooling/heating load in underground complex. Indoor and Built Environment 35(5), 603–608. DOI: 10.1177/1420326X251404699.

Mba EJ, Okeke FO, Ezema EC, Oforji PI, Ozigbo CA. 2023. Post-occupancy evaluation of ventilation coefficient desired for thermal comfort in educational facilities. Journal of Human, Earth, and Future 4(1), 88–102. DOI: 10.28991/HEF-2023-04-01-07.

Mba EJ, Sam-amobi CG, Okeke FO. 2022. Assessment of orientation on effective natural ventilation for thermal comfort in classrooms. European Journal of Sustainable Development 11(2), 114–132.

Mendell MJ, Chen W, Ranasinghe DR, Castorina R, Kumagai K. 2024. Carbon dioxide guidelines for indoor air quality: A review. Journal of Exposure Science and Environmental Epidemiology 34, 555–569. DOI: 10.1038/s41370-024-00694-7

Mohamed NAG. 2023. Assessment of urban ventilation in typical Egyptian housing layouts from four eras using a multi-directional CFD analysis. HBRC Journal 19(1), 453–481. DOI: 10.1080/16874048.2023.2285093.

Oforji PI, Mba EJ, Okeke FO. 2023. The effects of rhythm on building openings and fenestrations on airflow pattern in tropical low-rise residential buildings. Civil Engineering Journal 9(8), 2062–2084. DOI: 10.28991/CEJ-2023-09-08-016

Okhakhu PA. 2010. The Significance of Climatic Elements in Planning the Urban Environment of Benin City, Nigeria. PhD Thesis. Department of Geography and Regional Planning, Ambrose Alli University, Ekpoma, Nigeria.

Omrani S, Garcia-Hansen V, Capra B, Drogemuller R. 2017. Effect of natural ventilation mode on thermal comfort and ventilation performance: Full-scale measurement. Energy and Buildings 156, 1–16. DOI: 10.1016/j.enbuild.2017.09.061

Udo RK. 1978. A Comprehensive Geography of West Africa. London: Heinemann Educational Books.

Xi T, Sa’ad SU, Liu X, Sun H, Wang M, Guo F. 2025. Optimization of residential indoor thermal environment by passive design and mechanical ventilation in tropical savanna climate zone in Nigeria, Africa. Energies 18(3), 450. DOI: 10.3390/en18030450

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