WASCAL Academia Repository

Improving the sustainability and effectiveness of photovoltaic evaporative cooling greenhouse in the Sahel

Show simple item record

dc.contributor.author Alio Sanda, Djibrilla M.
dc.contributor.author Adamou, Rabani
dc.contributor.author Karimoun, M. Illyassou
dc.contributor.author H. Abdoulkader, Atto
dc.contributor.author Yaye Aissetou, Drame
dc.date.accessioned 2026-08-11T14:22:55Z
dc.date.available 2026-08-11T14:22:55Z
dc.date.issued 2024-05-16
dc.identifier.uri http://197.159.135.214/jspui/handle/123456789/1346
dc.description A Publication submitted to the West African Science Service Centre on Climate Change and Adapted Land Use and the Université Abdou Moumouni, Niger in partial fulfillment of the requirements for the degree of Master of Science Degree in Climate Change and Energy en_US
dc.description.abstract Anthropogenic climate change has caused worldwide extreme weather events including droughts, floods and heatwaves. It disproportionately affects developing countries through food insecurity. Greenhouse is important and relevant to the food-energy-water security in many regions. This study investigates the thermal behavior of photovoltaic evaporative cooling greenhouse made with ecofriendly coolers. The cooling potential of local plant materials was assessed under ambient conditions. Experimental thermal data obtained from optimized evaporative cooling system equipped with Hyphaene thebaica fibers (HF-pad) and conventional Celdek pad (C-pad), were used in heat and mass transfer equations to derive the greenhouse cooling performances. Computational fluid dynamics analysis software was used to investigate the refrigerant fluid distribution in the greenhouse. Cooler using HF-pad allows to keep the microclimate below 25 °C, with maximum moisture rate up to 80%, under harsh ambient conditions (temperature: 30–45 °C, humidity: 10–15%). HF-pad had the highest cooling coefficient of performance (COP = 9 against 6 for C-pad), the best cost to efficiency ratio (CER = 5; 4 times less than C-pad) and the lowest outlet temperature (20.0 °C). Due to higher outlet air velocity (1.116 m/s against 0.825 m/s for HF-pad), C-pad cooler spread cool air (20.5 °C) up to 1.25 m farther than its counterpart, creating higher pressure in the atmosphere (1.42 Pa against 0.71 Pa), with 2 times turbulent kinetic energy (0.014 J/kg). HF-pad presented cooling performances that compete with conventional pads. Moreover, optimization of HF-pad frame engineering and the technology scaling up to industrial level can allow better thermal and economic performances. en_US
dc.description.sponsorship The Federal Ministry of Research, Technology and Space (BMFTR) en_US
dc.language.iso en en_US
dc.publisher WASCAL en_US
dc.subject Climate Change en_US
dc.subject Cooling greenhouse en_US
dc.subject Sahel en_US
dc.title Improving the sustainability and effectiveness of photovoltaic evaporative cooling greenhouse in the Sahel en_US
dc.type Other en_US


Files in this item

This item appears in the following Collection(s)

Show simple item record

Search WASCAL Academia


Browse

My Account