Performance evaluation of aluminum-in-pot evaporative cooler

Authors

  • Olalekan Popoola Department of Mechanical Engineering, University of Ilorin, Ilorin, Kwara State, Nigeria https://orcid.org/0000-0003-4626-3394
  • Haruna Issa Department of Mechanical Engineering, University of Ilorin, Ilorin, Kwara State, Nigeria https://orcid.org/0009-0009-4767-2828
  • Hassan Ibrahim Department of Mechanical Engineering, University of Ilorin, Ilorin, Kwara State, Nigeria https://orcid.org/0000-0002-2673-5350
  • Peter Omoniyi Department of Mechanical Engineering, University of Ilorin, Ilorin, Kwara State, Nigeria https://orcid.org/0000-0002-7757-4104
  • Isaac Adegun Department of Mechanical Engineering, University of Ilorin, Ilorin, Kwara State, Nigeria

DOI:

https://doi.org/10.18011/bioeng.2025.v19.1319

Keywords:

Evaporative cooling, Saturation efficiency, Aluminium-in-pot, Lining, Thermodynamics

Abstract

Cooling applications by refrigeration and air-conditioning require electricity as a source of energy not abundantly available in sub-Saharan African countries. Post-harvest losses of vegetables are caused by poor storage facilities, poor transportation systems, and lack of processing facilities. The current study aimed to evaluate the performance of developed solar-powered Aluminium-in-pot evaporative coolers lined with clay and charcoal blends for the preservation of tomatoes. The evaporative cooler consisted of Aluminium pots inserted into an earthenware mould pot, and the space between the two pots filled with lining media of clay, charcoal, and blends of the two in different ratios.  The dry bulb temperature of the ambient air, inner temperatures of the cooling chambers, and relative Humidity were measured using fresh tomatoes as a load for the coolers. The temperature variations of the coolers were recorded for fifteen consecutive days. It was found that the inner temperatures for the five evaporative coolers were significantly different from the dry bulb temperature of the ambient. The temperature of sample E had the lowest temperature range of 19.65 °C to 23.65 °C for the no-load test, 21.15 °C to 25.29 °C for the load–load-test (better boy), and 21.1 to 23.25 °C for the load test (Plum). The daily temperature in the coolers dropped significantly to a range of between 3.4 °C to 10.46 °C with a corresponding daily RH range of 30.93% to 39%. The variations in the efficiency of Sample E were found to be averagely 84% at no load, 72% when loaded with Better Boy and 77% when loaded with Plum tomatoes. The aluminium in pot evaporative cooler could be used for a short-term preservation of tomatoes in remote areas where electricity is not available.

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References

Abaranji, S., Jothiprakasam, S., Radhakrishnan, L., PV, E., & Alwetaishi, M. (2025). Experimental Investigation of vermicompost masses with initial and continuous water supply in a direct evaporative cooling system. Heat and Mass Transfer, 61(1), 15. https://doi.org/10.1007/s00231-024-03525-5

Ajenifujah-Solebo, Shakirat. O., Akin-Idowu, P. E., Aduloju, A. O., Adedeji, V. O., Akinyode, E. T., Ibitoye, D. O., Arogundade, O., Oke, A. O., Adesegun, E. A., Ntui, V. O., Akinbo, O. A., Adetunji, C. O., Falana, Y. O., Joseph, R. I., & Bello, F. (2025). Tomato Crop Improvement Efforts in Nigeria: Past, Current and Future Perspectives. In Solanum lycopersicum L. - Research Methods, Approaches, and Perspectives [Working Title] (pp. 1–32). IntechOpen. https://doi.org/10.5772/intechopen.1009299

Aksoy, A., & Kaymak, H. Ç. (2024). Tomato Production Quantity Estimates for 2023-2027 With Arima Model: Evidence from Leading Producing Countries Including Turkey. Scientific Papers Series Management, Economic Engineering in Agriculture and Rural Development, 24(3), 41–46.

Al-Ismaili, A. M., & Al-Azri, N. A. (2016). Publication - Simple Iterative Approach to Calculate Wet-Bulb Temperature for Estimating Evaporative Cooling Efficiency. International Journal of Agriculture Innovations and Research. https://www.ijair.org/index.php/issues?view=publication&task=show&id=742

ASHRAE. (2018). 2018 ASHRAE HANDBOOK (Inch-Pound). ASHRAE.

Awafo, E. A., Nketsiah, S., Alhassan, M., & Appiah-Kubi, E. (2020). Design, Construction, and Performance Evaluation of an Evaporative Cooling System for Tomatoes Storage. Agricultural Engineering, 24(4), 1–12. https://doi.org/10.1515/agriceng-2020-0031

Ayanshola, A. M., Adidu, J. A., Iji, J. O., Oladimeji, S. B., Sule, B. F., Salami, A. W., & Bilewu, S. O. (2024). Estimating the Potential for Rainwater Harvesting in Ilorin. Nigeria Journal of Engineering and Engineering Technology, 18(1), 68–78. https://doi.org/10.51459

Babaremu, K. O., Omodara, M. A., Fayomi, O. S. I., Okokpujie, I. P., & Oluwafemi, J. O. (2018a). Design and optimization of an active evaporative cooling system. International Journal of Mechanical Engineering and Technology, 9(10), 1051–1061.

Babaremu, K. O., Omodara, M. A., Fayomi, O. S. I., Okokpujie, I. P., & Oluwafemi, J. O. (2018b). Design and optimization of an active evaporative cooling system. International Journal of Mechanical Engineering and Technology, 9(10), 1051–1061. http://www.iaeme.com/ijmet/issues.asp?JType=IJMET&VType=9&IType=10

Chaomuang, N., Laguerre, O., Supapvanich, S., Flick, D., & Duret, S. (2024). Evaporative cooling with a wet fabric blanket for non-refrigerated horticultural produce transport: An experimental study. Journal of Agriculture and Food Research, 18(July), 101339. https://doi.org/10.1016/j.jafr.2024.101339

Chemin, A., Levy Dit Vehel, V., Caussarieu, A., Plihon, N., & Taberlet, N. (2018). Heat transfer and evaporative cooling in the function of pot-in-pot coolers. American Journal of Physics, 86(3), 206–211. https://doi.org/10.1119/1.5016041

Defraeye, T., Schudel, S., Shrivastava, C., Motmans, T., Umani, K., Crenna, E., Shoji, K., & Onwude, D. (2024). The charcoal cooling blanket: A scalable, simple, self-supporting evaporative cooling device for preserving fresh foods. Biosystems Engineering, 238(November 2023), 128–142. https://doi.org/10.1016/j.biosystemseng.2023.12.001

Defraeye, T., Shoji, K., Schudel, S., Onwude, D., & Shrivastava, C. (2023). Passive evaporative coolers for postharvest storage of fruit and vegetables: Where to best deploy them and how well do they perform. Frontiers in Food Science and Technology, 3, 1100181. https://doi.org/10.3389/FRFST.2023.1100181/BIBTEX

FAO (Food and Agriculture Organisation). (n.d.). Global Food losses and food waste. In Global Food Loss and Food Waste.

Hashim, R. H., Hammdi, S. H., & Eidan, A. A. (2023). Enhancement of air conditioning system using direct evaporative cooling: Experimental and theoretical investigation. Open Engineering, 13(1). https://doi.org/10.1515/ENG-2022-0415/ASSET/GRAPHIC/J_ENG-2022-0415_FIG_015.JPG

Hashim, R., Hammdi, S., & Eidan, A. (2022). Evaporative Cooling: A Review of its Types and Modeling. Basrah Journal for Engineering Science, 22(1), 36–47. https://doi.org/10.33971/bjes.22.1.5

Heidarinejad, G., Heidarinejad, M., Delfani, S., & Esmaeelian, J. (2008). Feasibility of using various kinds of cooling systems in a multi-climates country. Energy and Buildings, 40(10), 1946–1953. https://doi.org/10.1016/j.enbuild.2008.04.016

Hussain, I., Bibi, F., Bhat, S. A., Sajjad, U., Sultan, M., Ali, H. M., Azam, M. W., Kaushal, S. K., Hussain, S., & Yan, W.-M. (2022). Evaluating the parameters affecting the direct and indirect evaporative cooling systems. Engineering Analysis with Boundary Elements, 145, 211–223. https://doi.org/10.1016/j.enganabound.2022.09.016

Ibrahim, A. K., Said, G., & Badr, M. M. (2024). Exploring the use of clay pots as sustainable storage containers to improve water quality. Journal of the Egyptian Public Health Association, 99(1), 17. https://doi.org/10.1186/s42506-024-00164-w

Ifabiyi, I. P., Geoffrey, E. O. G., & Salami, A. A. (2019). Assessment of water accessibility and quantity in Ilorin south local government area. Malaysian Journal of Society and Space, 15(3), 104–121. https://doi.org/10.17576/geo-2019-1503-08

Jahun, B. G., Abdulkadir, S. A., Musa, S. M., & Umar, H. (2016). Assessment of Evaporative Cooling System for Storage of Vegetables. International Journal of Science and Research (IJSR), 5(1), 1197–1203. https://doi.org/10.21275/v5i1.nov152974

Kalsia, M., Sharma, A., Kaushik, R., & Dondapati, R. S. (2023). Evaporative Cooling Technologies: Conceptual Review Study. Evergreen, 10(1), 421–429. https://doi.org/10.5109/6781102

Kaur, R., & Watson, J. A. (2024). A Scoping Review of Postharvest Losses, Supply Chain Management, and Technology: Implications for Produce Quality in Developing Countries. Journal of the ASABE, 67(5), 1103–1131. https://doi.org/10.13031/ja.15660

Lal Basediya, A., Samuel, D. V. K., & Beera, V. (2013). Evaporative cooling system for storage of fruits and vegetables - A review. Journal of Food Science and Technology, 50(3), 429–442. https://doi.org/10.1007/S13197-011-0311-6

Lan, Y., Liu, Y., Li, J., Chen, D., He, G., & Parkin, I. P. (2021). Natural Clay‐Based Materials for Energy Storage and Conversion Applications. Advanced Science, 8(11), 2004036. https://doi.org/10.1002/advs.202004036

Li, R., Wang, W., Shi, Y., Wang, C., & Wang, P. (2024). Advanced Material Design and Engineering for Water‐Based Evaporative Cooling. Advanced Materials, 36(12). https://doi.org/10.1002/adma.202209460

Mogaji, T. S., & Fapetu, O. P. (2011). Development of an evaporative cooling system for the preservation of fresh vegetables. African Journal of Food Science, 5(4), 255–266. http://www.academicjournals.org/ajfs

Mukherjee, S. (2013). The Science of Clays. In The Science of Clays. Springer Netherlands. https://doi.org/10.1007/978-94-007-6683-9

Nduhuura, P., Garschagen, M., & Zerga, A. (2021). Impacts of Electricity Outages in Urban Households in Developing Countries: A Case of Accra, Ghana. Energies 2021, Vol. 14, Page 3676, 14(12), 3676. https://doi.org/10.3390/EN14123676

Ndukwu, M. C., Tom, C. N., Akpan, G., Usoh, G. A., Akpanmkpuk, S. N., Grisseur, D. H., Akuwueke, L., Ben, A. E., Abam, F. I., Simo-Tagne, M., Bennamoun, L., Wu, H., Edeth, J., & Onwude, D. I. (2025). Assessing hygrothermal effects on the evaporative cooling of fruits with waste palm fruit fibre pads. Cleaner and Circular Bioeconomy, 10, 100131. https://doi.org/10.1016/j.clcb.2024.100131

Osabohien, R. (2024). Soil technology and post-harvest losses in Nigeria. Journal of Agribusiness in Developing and Emerging Economies, 14(3), 570–586. https://doi.org/10.1108/JADEE-08-2022-0181

Ouattara, S., & KONATE, M. (2024). The Tomato: A Nutritious and Profitable Vegetable to Promote in Burkina Faso. Alexandria Science Exchange Journal, 45(1), 11–20. https://doi.org/10.21608/asejaiqjsae.2024.332758

Patel, D. P., Jain, S. K., Lakhawat, S. S., & Wadhawan, N. (2022). A low-cost storage for horticulture commodities for enhancing farmer’s income: An overview on evaporative cooling. Journal of Food Process Engineering, 45(10), e14134. https://doi.org/10.1111/JFPE.14134

Rashwan, M. A., Al-Helal, I. M., Alkahtani, S. M., Alkoaik, F. N., Fickak, A. A., Almasoud, W. A., Alshamiry, F. A., Ibrahim, M. N., Fulleros, R. B., & Shady, M. R. (2025). Evaluation of Volcanic Stone Pad Performance Used for Evaporative Cooling System. Energies, 18(8), 1–16. https://doi.org/10.20944/preprints202504.0330.v

Raza, H. M. U., Sultan, M., Bahrami, M., & Khan, A. A. (2021). Experimental investigation of evaporative cooling systems for agricultural storage and livestock air-conditioning in Pakistan. Building Simulation, 14(3), 617–631. https://doi.org/10.1007/S12273-020-0678-2/METRICS

Shuaib-Babata, Yusuf Lanre, Ambali, Ibrahim Owolabi, Ibrahim, Hassan Kobe, Ajao, K. S., Shuaib-Babata, Y L, Ambali, I O, Ibrahim, H K, SAjao, K., Elakhame, Z. U., Aremu, N. I., & Odeniyi, O. M. (2019). Assessment of Physico-Mechanical Properties of Clay Deposits in Asa Local Government Area of Kwara State Nigeria for Industrial Applications. Journal of Research Information in Civil Engineering, 16(2), 2727–2753. https://www.researchgate.net/publication/333487096

Sufiyan, I., Mohammed, K., Bello, I., & Zaharadeen, I. (2020). Impact of harmattan season on human health in Keffi, Nasarawa State, Nigeria. Matrix Science Medica, 4(2), 44. https://doi.org/10.4103/mtsm.mtsm_1_20

Umeohia, U. E., & Olapade, A. A. (2024). Quality attributes, physiology, and Postharvest Technologies of Tomatoes (Lycopersicum esculentum)–A review. American Journal of Food Science and Technology, 12(2), 42-64. https://doi.org/10.12691/ajfst-12-2-1

Xu, L., Sun, D. W., Tian, Y., Sun, L., Fan, T., & Zhu, Z. (2022). Combined Effects of Radiative and Evaporative Cooling on Fruit Preservation under Solar Radiation: Sunburn Resistance and Temperature Stabilization. ACS Applied Materials and Interfaces, 14(40), 45788–45799. https://doi.org/10.1021/ACSAMI.2C11349/ASSET/IMAGES/MEDIUM/AM2C11349_M007.GIF

Yahaya, Suleiman Abimbola, Akande, Kareem Adeyemi, Yahaya, S A, & Akande, K A. (2018). Development and Performance Evaluation of Pot-in-pot Cooling Device for Ilorin and its Environ Health Care Management System View project phyto hormones as plant growth enhancer View project Development and Performance Evaluation of Pot-in-pot Cooling Dev. Journal of Research Information in Civil Engineering, 15(1). https://www.researchgate.net/publication/327686854

Zakari, M. D., Abubakar, Y. S., Muhammad, Y. B., Shanono, N. J., Nasidi, N. M., Abubakar, M. S., Muhammad, A. I., Lawan, I., & Ahmad, R. K. (2016). Design and construction of an evaporative cooling system for the storage of fresh tomato. ARPN Journal of Engineering and Applied Sciences, 11(4), 2340–2348. https://doi.org/10.13140/RG.2.1.4748.4569

Zhang, A., & Li, Y. (2023). Thermal Conductivity of Aluminum Alloys—A Review. Materials, 16(8), 1–21. https://doi.org/10.3390/ma16082972

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Published

19-04-2026

How to Cite

Popoola, O., Issa, H., Ibrahim, H., Omoniyi, P., & Adegun, I. (2026). Performance evaluation of aluminum-in-pot evaporative cooler. Revista Brasileira De Engenharia De Biossistemas, 19. https://doi.org/10.18011/bioeng.2025.v19.1319

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