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Assessment of Building Characteristics, Ventilation Openings and Natural Ventilation Performance in Community Health Centres in Ogbomoso, Nigeria
Subject area: Science,Engineering and Technology · Area of research: Architecture
DOI: https://doi.org/10.64388/IREV10I3-1723004
Abstract
This study assessed the influence of natural ventilation on users’ satisfaction in selected community health centres in Ogbomoso, Nigeria, with the findings intended to inform the design of a proposed community health centre in Aroje. A descriptive research design was adopted, combining questionnaire surveys with field observation and assessment of ventilation characteristics. Data were collected from 182 users, comprising patients, visitors, healthcare workers and other users of selected health centres. Descriptive statistics, including frequencies, percentages and mean weighted values, were used to analyse the data. The findings revealed that 55.5% of the respondents identified the facilities as Primary Health Centres, while 69.8% were government-owned and 87.9% were single-storey buildings. Regarding users’ thermal responses, 72.0% reported feeling slightly warm or hot, while 66.5% preferred cooler indoor conditions and 75.9% experienced heat discomfort at least sometimes. The assessment of ventilation openings showed that 53.8% reported the absence of cross-ventilation, while 51.6% described windows as small and 39.6% rated existing openings as inadequate. Perceived ventilation performance was generally low, with cross-ventilation availability recording the lowest mean weighted value of 2.29, while ventilation effectiveness during hot periods recorded 2.30. These findings indicate that inadequate opening sizes, poor positioning, obstruction and limited cross-ventilation constrain natural ventilation performance. The study recommends climate-responsive design strategies incorporating effective cross-ventilation, adequately sized operable openings, shaded outdoor spaces and high-level ventilation openings for improved user comfort and satisfaction.
Keywords
natural ventilation; users’ satisfaction; thermal comfort; community health centres; cross-ventilation; ogbomoso; healthcare facilities.
References
[1] Abimbola, S., Negin, J., Jan, S., and Martiniuk, A. (2021). Towards people-centred health systems: A multi-level framework for analysing primary health care governance in low- and middle-income countries. Health Policy and Planning, 36(2), 123–135.
[2] Abuhussain, M. A., Alotaibi, B. S., Suru, I. B., Dodo, Y. A., Alshenaifi, M. A., and Aliero, M. S. (2024). Occupant thermal comfort in naturally ventilated buildings: A review. Environmental Science and Pollution Research, 31, 56983–57001.
[3] Adebayo, P. W., Akinlabi, E. T., and Madushele, N. (2022). Assessment of passive design strategies for thermal comfort in Nigerian healthcare buildings. Journal of Building Engineering, 50, 104104.
[4] Adedini, S. A., Odimegwu, C., Bamiwuye, O., Fadeyibi, O., and De Wet, N. (2020). Barriers to accessing maternal healthcare in Nigeria: Implications for maternal mortality reduction. Global Health Action, 13(1), 1–10.
[5] Ahmed, T., Kumar, P., and Mottet, L. (2021). Natural ventilation in warm climates: The challenges of thermal comfort, heatwave resilience and indoor air quality. Renewable and Sustainable Energy Reviews, 138, 110669. Crossref
[6] Alabi O. O., and Odunjo, O. and Okanlawon, S. and Ayinla. A. k., (2025). Climate-Responsive Architecture in South-Western Nigeria: A Case Study of Climate Analysis and Design Adaptation in A Selected Town. Journal of Environmental Management and Construction Research. Crossref
[7] Aregbeshola, B. S., and Khan, S. M. (2020). Primary health care in Nigeria: 24 years after Olikoye Ransome-Kuti’s leadership. Frontiers in Public Health, 8, 1–7.
[8] Atkinson, J., Chartier, Y., Pessoa-Silva, C. L., Jensen, P., Li, Y., and Seto, W. H. (2009). Natural ventilation for infection control in health-care settings. World Health Organization.
[9] Aydın, K., and Yılmaz, B. (2023). CFD-based multi-objective optimization of indoor air quality and thermal comfort in a classroom. Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 238(5), 2511–2523.
[10] Basil, A. M., Okwuosa, C. C., Uzuegbunam, F. O., and Ugwu, L. E. (2024). A seasonal investigation of indoor air quality in relation to architectural features in government office buildings in Enugu, Nigeria. Scientific Reports, 14, 26885.
[11] Cao, S., Li, X., Yang, B., and Li, F. (2021). A review of research on dynamic thermal comfort. Building Services Engineering Research and Technology, 42(4), 387–403.
[12] Doctor, H. V., Findley, S. E., Afenyadu, G. Y., and Uzondu, C. (2012). Using community- based interventions to improve maternal health outcomes in Nigeria. Global Public Health, 7(9), 1–15.
[13] Federal Ministry of Health. (2016). National health policy 2016. Abuja: Federal Ministry of Health, Nigeria.
[14] Gholampour, M., Taghipour, M., Tahavvor, A., and Jafari, S. (2024). Natural and mechanical ventilation performance in improving indoor air quality and comfort. International Journal of Ventilation, 24(2), 166–187.
[15] Ibem, E. O., Adeboye, A. B., and Alagbe, O. A. (2020). Post-occupancy evaluation of indoor environmental quality in public buildings in Nigeria. Building Research and Information, 48(6), 655–670.
[16] Islam, S. (2025). Enhancing indoor environmental air quality through smoke ventilation in buildings. American Journal of Civil Engineering and Constructions, 1(1), 1- 15.
[17] Jiang, Z., Kobayashi, T., Yamanaka, T., and Sandberg, M. (2023). A literature review of cross ventilation in buildings. Energy and Buildings, 291, 113143. Crossref
[18] Luo, W., Kramer, R., de Kort, Y., Rense, P., and van Marken Lichtenbelt, W. (2022). The effects of a novel personal comfort system on thermal comfort and perceived indoor environmental quality. Indoor Air, 32(1), e12951.
[19] Mba, E. J., Oforji, P. I., Okeke, F. O., (2025). Assessment of floor-level impact on natural ventilation and indoor thermal environment in hot–humid climates. Buildings, 15(5), 686.
[20] Mba, E. J., Sam-Amobi, C. G., and Okeke, F. O. (2022). Assessment of orientation on effective natural ventilation for thermal comfort in classrooms in Enugu, Nigeria. European Journal of Sustainable Development, 11(2), 114–132.
[21] Munonye, C., and Ji, Y. (2020). Evaluating thermal comfort perception in naturally ventilated school buildings in a warm humid climate of Nigeria. Building Services Engineering Research and Technology, 42(1).
[22] Mustapha, T. D., Hassan, A. S., Khozaei, F., and Onubi, H. O. (2023). Thermal comfort assessment in naturally ventilated classrooms in Abuja, Nigeria. Indoor and Built Environment, 33(1).
[23] National Population Commission (NPC) [Nigeria], and ICF. (2019). Nigeria demographic and health survey 2018. Abuja and Rockville.
[24] National Primary Health Care Development Agency (NPHCDA). (2019). Minimum standards for primary health care in Nigeria. Abuja.
[25] Nimlyat, P. S., Salihu, B., and Wang, G. P. (2022). The impact of indoor environmental quality (IEQ) on patients’ health and comfort in Nigeria. International Journal of Building Pathology and Adaptation, 42(4), 510–530.
[26] Nwafor, O. J. (2022). Investigation of the influence of natural ventilation on indoor comfort of occupants of public hospital wards in hot-humid climates. Irish International Journal of Engineering and Applied Sciences.
[27] Ogochukwu, E. W., and Ehisuoria, E. O. (2025). Utilization of natural ventilation strategies for improving thermal comfort in low-cost housing in Lagos State, Nigeria. ABUAD Journal of Social and Management Sciences, 6(1), 206– 224.
[28] Ogunnaike, A. O., Daramola, O. F., and Ojo, O. I. (2025). Modernist Architecture and Human Comfort in Public Spaces: A Literature-Based Review with Focus on Lagos, Nigeria. African Journal of Environmental Sciences and Renewable Energy, 19(1), 286-307.
[29] Ogunsote, O. O., and Prucnal-Ogunsote, B. (2020). Climate-responsive architecture and building performance in Nigeria. ATBU Journal of Environmental Technology, 13(2), 1–15.
[30] Ohba, M., and Lun, I. Y. F. (2010). Overview of natural cross-ventilation studies and the latest simulation design tools. Advances in Building Energy Research, 4(1), 127–166.
[31] Oladokun, T. T., Odesola, I. A., and Ojo, O. (2014). Evaluation of thermal comfort in residential buildings in Ibadan, Nigeria. Energy and Buildings, 85, 236–244.
[32] Onwujekwe, O., Hanson, K., and Uzochukwu, B. (2019). Examining inequities in incidence of catastrophic health expenditures on different healthcare services and health facilities in Nigeria. PLoS ONE, 14(4), e0214911.
[33] Okafor, C. C., and Okolie, K. C. (2021). Indoor environmental quality and user satisfaction in public healthcare facilities in Nigeria. Journal of Sustainable Development in Africa, 23(3), 45– 60.
[34] Okafor, M. U., Awuzie, B. O., Otasowie, K., and Aigbavboa, C. (2022). Evaluation of indoor thermal comfort conditions in warm-humid climate. Sustainability, 14(19), 12138.
[35] Okello, G., De Kluizenaar, Y., Kurmi, O. P., and Semple, S. (2024). Natural ventilation and indoor air quality in tropical buildings. Energy Reports, 12, 4184–4194.
[36] Okonkwo, M. M., Ogwu, I., Umo, U. P., and Ononuju, F. I. (2022). Natural ventilation architectural design for passive cooling in buildings in Nigeria. Irish Journal of Environment and Earth Sciences.
[37] Rahman, N. M. A., Haw, L. C., and Fazlizan, A. (2021). A review of naturally ventilated hospital wards in tropical climates. Energies, 14(2), 435.
[38] Rodrigues, F., Silva, M., Gomes, A., and Pereira, R. (2025). Indoor air quality in healthcare units and its effects on health: A systematic review. BMC Public Health, 25, 2398.
[39] Tamura, K., Matsumoto, S., Tseng, Y. H., Kobayashi, T., and Okamoto, T. (2022). Physiological comfort evaluation under different airflow conditions. Journal of Physiological Anthropology, 41(16).
[40] Ulrich, R. S., Zimring, C., Zhu, X., DuBose, J., Seo, H. B., Choi, Y. S., and Quan, X. (2008). A review of the research literature on evidence- based healthcare design. HERD, 1(3), 61–125.
[41] Uzuegbunam, F. O., Uzuegbunam, T. D., Isiofia, L. A., and Ibem, E. O. (2024). Thermal comfort in naturally ventilated buildings in hot- humid Nigeria. International Journal of Research and Innovation in Applied Science, 9(6), 42–60.
[42] Wang, Z., Zhang, Y., and Zhao, J. (2021). Thermal comfort in naturally ventilated hospital wards. Building and Environment, 188, 107488.
[43] World Bank. (2020). Primary health care and universal health coverage. Washington, DC.
[44] World Health Organization. (2021). Primary health care: Transforming vision into action. Geneva.
[45] Wu, Z., Li, N., and Wargocki, P. (2022). The effect of inhaled air temperature on perceived air quality and thermal comfort. Indoor Air, 32(8).
[46] Yang, T., and Clements-Croome, D. (2012). Natural ventilation in built environment. In Encyclopedia of Sustainability Science and Technology. Springer.
[47] Zaniboni, L., and Albatici, R. (2022). Natural and mechanical ventilation concepts for indoor comfort and well-being: A systematic review. Buildings, 12(11), 1983.
How to cite this paper
@article{1723004,
author = {SIYANBOLA Ayomide Jubril, Ayinla A. K., Alao Richard},
title = {Assessment of Building Characteristics, Ventilation Openings and Natural Ventilation Performance in Community Health Centres in Ogbomoso, Nigeria},
journal = {Iconic Research And Engineering Journals},
year = {2026},
volume = {10},
number = {3},
pages = {1529-1546},
issn = {2456-8880},
url = {https://www.irejournals.com/formatedpaper/1723004.pdf},
abstract = {This study assessed the influence of natural ventilation on users’ satisfaction in selected community health centres in Ogbomoso, Nigeria, with the findings intended to inform the design of a proposed community health centre in Aroje. A descriptive research design was adopted, combining questionnaire surveys with field observation and assessment of ventilation characteristics. Data were collected from 182 users, comprising patients, visitors, healthcare workers and other users of selected health centres. Descriptive statistics, including frequencies, percentages and mean weighted values, were used to analyse the data. The findings revealed that 55.5% of the respondents identified the facilities as Primary Health Centres, while 69.8% were government-owned and 87.9% were single-storey buildings. Regarding users’ thermal responses, 72.0% reported feeling slightly warm or hot, while 66.5% preferred cooler indoor conditions and 75.9% experienced heat discomfort at least sometimes. The assessment of ventilation openings showed that 53.8% reported the absence of cross-ventilation, while 51.6% described windows as small and 39.6% rated existing openings as inadequate. Perceived ventilation performance was generally low, with cross-ventilation availability recording the lowest mean weighted value of 2.29, while ventilation effectiveness during hot periods recorded 2.30. These findings indicate that inadequate opening sizes, poor positioning, obstruction and limited cross-ventilation constrain natural ventilation performance. The study recommends climate-responsive design strategies incorporating effective cross-ventilation, adequately sized operable openings, shaded outdoor spaces and high-level ventilation openings for improved user comfort and satisfaction.},
keywords = {natural ventilation; users’ satisfaction; thermal comfort; community health centres; cross-ventilation; ogbomoso; healthcare facilities.},
month = {September},
doi = {https://doi.org/10.64388/IREV10I3-1723004}
}