Experimental Study of Forced Convection Heat Transfer in a Tropical Greenhouse Using a Cooling Pad and Fan System
DOI:
https://doi.org/10.51601/ijse.v6i2.727Abstract
A greenhouse is a cultivation technology designed to control environmental conditions to support optimal plant growth. However, in tropical regions such as Indonesia, the air temperature inside greenhouses tends to increase due to high solar radiation, making an effective cooling system essential. This study aims to evaluate the performance of a cooling pad and exhaust fan system in reducing air temperature, maintaining relative humidity, and achieving uniform temperature distribution through forced convection heat transfer inside a greenhouse. An experimental method was employed by measuring outdoor temperature, indoor temperature, relative humidity (RH), and air velocity at 12 sensor locations. Data were collected every 20 minutes from 08:00 to 16:00 for 28 consecutive days. The collected data were analyzed to determine the average temperature, temperature distribution, temperature reduction (ΔT), and cooling system effectiveness. The results indicate that the cooling pad and exhaust fan system reduced the indoor air temperature by an average of 4.25°C, maintained relative humidity within the range of 70–84%, and produced an air velocity between 0.90 and 1.12 m/s. The temperature distribution across the 12 sensor locations showed a maximum difference of only 0.3°C, indicating a uniform air distribution throughout the greenhouse. Therefore, the proposed cooling system is effective in controlling the greenhouse microclimate and has the potential to improve crop cultivation performance in tropical environments.
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[1]. ASHRAE. (2021). ASHRAE handbook—HVAC applications. American Society of Heating, Refrigerating and Air-Conditioning Engineers.
[2]. Çengel, Y. A., & Ghajar, A. J. (2020). Heat and mass transfer: Fundamentals and applications (6th ed.). McGraw-Hill Education.
[3]. Incropera, F.P., DeWitt, D.P., Bergman, T.L., & Lavine, A.S. (2017). Fundamentals of heat and mass transfer (8th ed.). John Wiley & Sons. Journal (18 references)
[4]. Gupta, A., Sharma, P., & Kumar, R. (2022). Climate control strategies in tropical greenhouses: A review. Environmental Challenges, 8, 100561.
[5]. Singh, D., & Sharma, P. (2022). IoT-based smart greenhouse monitoring system: A review. Materials Today: Proceedings, 49, 3142–3147.
[6]. Taki, M., & Rohani, A. (2020). Smart greenhouse monitoring and control using the Internet of Things. Information Processing in Agriculture, 7(3), 369–380.
[7]. Wang, X., et al. (2021). Selection of a computational fluid dynamics (CFD) model and its application to greenhouse pad-fan cooling systems. Journal of Cleaner Production, 302, 127013. https://doi.org/10.1016/j.jclepro.2021.127013
[8]. Li, H., Guo, Y., Zhao, H., Wang, Y., & Chow, D.H. (2021). Towards automated greenhouses: A state-of-the-art review on greenhouse monitoring methods and technologies based on the Internet of Things. Computers and Electronics in Agriculture, 191, 106558.
[9]. Oliveira, GLFA, Lopes, D.C., Steidle Neto, A.J., & Zolnier, S. (2023). Software for sizing pad-fan evaporative cooling systems of greenhouses. Energia na Agricultura, 38(2), 14–25. https://doi.org/10.17224/EnergAgric.2023v38n2p14-25
[10]. Shojaei, M.H., Mortezapour, H., Jafarinaeimi, K., & Maharlooei, M.M. (2021). An estimation method for greenhouse temperature under the influence of evaporative cooling system. Journal of Thermal Engineering, 7(4), 918–933. https://doi.org/10.18186/thermal.930907
[11]. Jiao, N., Zhu, D., Jing, Y., Liu, M., & Liu, C. (2024). Research on determining method of greenhouse wet pad-fan operating parameters based on numerical simulation. Journal of Chinese Agricultural Mechanization, 45(5), 79–84. https://doi.org/10.13733/j.jcam.issn.2095-5553.2024.05.012
[12]. Pardo-Pina, S., Ferrández-Pastor, J., Rodríguez, F., & Cámara-Zapata, J. M. (2024). Analysis of an evaporative cooling pad connected to an air distribution system of perforated polyethylene tubes in a greenhouse. Agronomy, 14(6), 1187.
[13]. Alhaqi, MAD, et al. (2024). Internet of Things-driven evaporative cooling system for tropical greenhouse environmental control. IOP Conference Series: Earth and Environmental Science.
[14]. Sanhaji, G., et al. (2024). Internet of Things based micro climate control optimization system for tropical greenhouses in responding to climate change. International Journal of Research and Reviews.
[15]. Jamaluddin, TAA, et al. (2025). Temperature and humidity control in a small-scale greenhouse in a tropical climate. Salaga Journal.
[16]. Laumal, F., et al. (2025). Adaptive-historical energy-efficient temperature control for tropical greenhouses. Journal of Agricultural Engineering.
[17]. Sapounas, A., Bartzanas, T., Kittas, C., et al. (2023). Fan and pad evaporative cooling system for greenhouses: Evaluation of a numerical and analytical model.
[18]. Franco, A., Valera, D.L., Peña, A., & Pérez, A. (2014). Energy efficiency in greenhouse evaporative cooling techniques: Cooling boxes versus cellulose pads. Energies, 7(3), 1427–1447.
[19]. Valera, D.L., Molina-Aiz, F.D., Peña, A., & López, A. (2012). Pad-fan systems in Mediterranean greenhouses: Determining optimal setup by sonic anemometry. Transactions of the ASABE, 55(3), 1077–1089.
[20]. Sethi, V.P., & Sharma, S.K. (2008). Survey of cooling technologies for worldwide agricultural greenhouse applications. Solar Energy, 82(9), 832–859.
[21]. Teitel, M. (2007). The effect of screens and ventilation on airflow and temperature distribution in greenhouses. Biosystems Engineering, 96(1), 99–111.
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