Home / Current Issue / Paper 1722823
Assessment of Indoor Thermal Comfort in Selected University Libraries In Kwara State, Nigeria
Subject area: Science,Engineering and Technology · Area of research: Architecture
DOI: 10.64388/IREV10I3-1722823
Abstract
University libraries are long-duration learning environment in which indoor thermal conditions can influence users’ comfort and the ability to sustain academic activities. A conducive and comfortable environment increases student’s attention and concentration, productivity therefore, these should be characterised with thermal comfortability. This study evaluated indoor thermal comfort in selected university libraries in Kwara State, Nigeria, focusing on users’ subjective perceptions and measured indoor environmental conditions. A mixed-method approach was adopted, combining questionnaire responses from 330 library users with objective measurements of air temperature, relative humidity and air velocity in five university libraries. Measurements were taken during morning, afternoon, evening and night periods on Monday, Wednesday and Friday. Descriptive statistics and Mean Weighted Values were used to interpret users’ thermal sensation, while direct measurements were used to establish the prevailing indoor conditions. Findings revealed that afternoon was perceived as the warmest period, with an MWV of 3.33, while night recorded the coolest sensation (MWV = 2.19). Relative humidity was predominantly perceived as humid across all periods, while air movement was generally considered adequate, with an overall MWV of 3.01. Objective measurements recorded afternoon temperatures between 30.3°C and 31.2°C, morning relative humidity between 83.2% and 86.3%, and air velocity between 1.9 and 2.6 m/s across the libraries. The subjective and objective assessments showed broad correspondence, particularly for air temperature and relative humidity. The study concludes that the selected libraries experienced generally warm and humid conditions during important periods of use, although air movement was relatively acceptable. It recommends regular thermal monitoring, improved operational control of ventilation and cooling systems, and routine assessment of indoor environmental conditions to maintain acceptable library environments.
Keywords
Thermal comfort; University libraries; Air temperature; Relative humidity; Air velocity.
References
[1] Corgnati, S. P., Filippi, M., & Viazzo, S. (2007). Perception of the thermal environment in high school and university classrooms: Subjective preferences and thermal comfort. Building and Environment, 42, 951–959. (Sage Journals)
[2] Frontczak, M. J., & Wargocki, P. (2011). Literature survey on how different factors influence human comfort in indoor environments. Building and Environment, 46(4), 922–937. https://doi.org/10.1016/j.buildenv.2010.10.021 (Welcome to DTU Research Database)
[3] Freeman, T. G. (2019). The library as place: Changes in learning patterns, collections, technology and use. In T. G. Freeman, Library as place: Rethinking roles, rethinking space (pp. 3–26). American Library Association.
[4] Julia Raish. (2020). Thermal comfort: Designing for people.
[5] Kats, G. (2019). Greening America’s schools: Costs and benefits. Capital-E Report.
[6] Manioğlu, G., & Yilmaz, Z. (2006). Economic evaluation of the building envelope and operation period of heating system in terms of thermal comfort. Energy and Buildings, 38(3), 266–272. https://doi.org/10.1016/j.enbuild.2005.06.009 (Istanbul Technical University)
[7] Ommid Saberi, P., Saneei, P., & Javanbakht, A. (2019). Thermal comfort in architecture. Shahid Beheshti University, Tehran, Iran.
[8] Raja, I. A., Nicol, J. F., McCartney, K. J., & Humphreys, M. A. (2001). Thermal comfort: Use of controls in naturally ventilated buildings. Energy and Buildings, 33(3), 235–244. https://doi.org/10.1016/S0378-7788(00)00087-6 (ScienceDirect)
[9] Schiller, G. E. (2019). A comparison of measured and predicted comfort in office buildings. ASHRAE Transactions, 96(1), 609–622.
[10] Sookchaiya, T., Monyakul, V., & Thepa, S. (2010). Assessment of the thermal environment effects on human comfort and health for the development of novel air conditioning system in tropical regions. Energy and Buildings, 42(10), 1692–1702. (archive.lib.cmu.ac.th)
[11] Wang, Z. (2020). A field study of the thermal comfort in residential buildings in Harbin. Building and Environment, 41, 1034–1039.
[12] Wang, L., & Wong, N. H. (2007). Applying natural ventilation for thermal comfort in residential buildings in Singapore. Architectural Science Review, 50(3), 224–233. https://doi.org/10.3763/asre.2007.5028 (Taylor & Francis Online)
[13] Xia, Y. Z., Zhao, R. Y., & Jang, Y. (2019). Thermal comfort in naturally ventilated houses in Beijing. Journal of HV&AC, 29(2), 1–5.
[14] Yau, Y. H. (2019). A preliminary thermal comfort study in tropical buildings located in Malaysia. International Journal of Mechanical and Materials Engineering, 3(2), 119–126.
[15] Liping, W., & Hien, W. N. (2007). Applying natural ventilation for thermal comfort in residential buildings in Singapore. Architectural Science Review, 50(3), 224–233. https://doi.org/10.3763/asre.2007.5028 (Taylor & Francis Online)
How to cite this paper
@article{1722823,
author = {Olokoba Babatunde Suleiman, Oyadokun Joel Olufemi, Yunus Sulaiman, Uthman Olanrewaju Adigun, Ajayi Abimbola Bukola},
title = {Assessment of Indoor Thermal Comfort in Selected University Libraries In Kwara State, Nigeria},
journal = {Iconic Research And Engineering Journals},
year = {2026},
volume = {10},
number = {3},
pages = {551-559},
issn = {2456-8880},
url = {https://www.irejournals.com/formatedpaper/1722823.pdf},
abstract = {University libraries are long-duration learning environment in which indoor thermal conditions can influence users’ comfort and the ability to sustain academic activities. A conducive and comfortable environment increases student’s attention and concentration, productivity therefore, these should be characterised with thermal comfortability. This study evaluated indoor thermal comfort in selected university libraries in Kwara State, Nigeria, focusing on users’ subjective perceptions and measured indoor environmental conditions. A mixed-method approach was adopted, combining questionnaire responses from 330 library users with objective measurements of air temperature, relative humidity and air velocity in five university libraries. Measurements were taken during morning, afternoon, evening and night periods on Monday, Wednesday and Friday. Descriptive statistics and Mean Weighted Values were used to interpret users’ thermal sensation, while direct measurements were used to establish the prevailing indoor conditions.
Findings revealed that afternoon was perceived as the warmest period, with an MWV of 3.33, while night recorded the coolest sensation (MWV = 2.19). Relative humidity was predominantly perceived as humid across all periods, while air movement was generally considered adequate, with an overall MWV of 3.01. Objective measurements recorded afternoon temperatures between 30.3°C and 31.2°C, morning relative humidity between 83.2% and 86.3%, and air velocity between 1.9 and 2.6 m/s across the libraries. The subjective and objective assessments showed broad correspondence, particularly for air temperature and relative humidity.
The study concludes that the selected libraries experienced generally warm and humid conditions during important periods of use, although air movement was relatively acceptable. It recommends regular thermal monitoring, improved operational control of ventilation and cooling systems, and routine assessment of indoor environmental conditions to maintain acceptable library environments.},
keywords = {Thermal comfort; University libraries; Air temperature; Relative humidity; Air velocity.},
month = {September},
doi = {https://doi.org/10.64388/IREV10I3-1722823}
}