Use of Nano-Encapsulated phase change material mixed with water for natural convection cooling in combination with nickel foam

dc.contributor.authorGuedri ,Kamel
dc.contributor.authorRiaz, Fahid
dc.contributor.authorFadhl, Bandar M.
dc.contributor.authorAgrawal, Manoj Kumar
dc.contributor.authorShah,Nehad Ali
dc.contributor.authorMakhdoum,Basim M.
dc.contributor.authorYoushanlouei, Hossein Mehdizadeh
dc.date.accessioned2024-04-04T07:56:58Z
dc.date.available2024-04-04T07:56:58Z
dc.date.issued2023-07-01
dc.descriptionOne of the major challenges faced by industries such as foundry, steel, forging, sheet metal, and electronics is the cooling of hot parts and devices [1], [2], [3]. In these industries, mechanical or electronic components may be in operation that come in contact with heating processes, or they may generate heat due to mechanical friction or electric dissipation. If the temperature of these components is not kept within a safe range, they can be damaged or destroyed.
dc.description.abstractThis study investigated the potential benefits of using free convection mechanisms to cool parts, as opposed to forced convection mechanisms that require energy to transfer heat and mass. The research team cooled a hot plate, which had a uniform heat flux, by utilizing the free convection flow inside a square cavity. They also installed a partial nickel porous media with different porosities on the hot plate and injected nano-encapsulated phase change material (NEPCM) particles into water to form a cooling fluid mixture. For the NEPCM particles, the researchers selected n-docosane with a melting temperature of 317.65 K for the core and polyurethane for the shell. The researchers used computational fluid dynamics (CFD) to simulate the cooling process with varying parameters, including porosity, deflection angles, and NEPCM volume fraction. The results showed that the cooling performance of nickel foam was significantly better than that of NEPCM. For example, when the porosity of the nickel foam decreased from 0.98 to 0.93, the average Nusselt number increased by 142 %, indicating a considerable improvement in cooling efficiency. In comparison, increasing the NEPCM volume fraction from 0 to 6 % only resulted in a modest 5.6 % increase in the average Nusselt number. Keywords: CFDFree, convection Nickel, foam, NEPCMn, Docosane
dc.identifier.citationGuedri, K., Riaz, F., Fadhl, B. M., Agrawal, M. K., Shah, N. A., Makhdoum, B. M., & Youshanlouei, H. M. (2023). Use of Nano-Encapsulated phase change material mixed with water for natural convection cooling in combination with nickel foam. Thermal Science and Engineering Progress, 42, 101934.‏
dc.identifier.doihttps://doi.org/10.1016/j.tsep.2023.101934
dc.identifier.urihttps://dspace.adu.ac.ae/handle/1/4747
dc.language.isoen
dc.titleUse of Nano-Encapsulated phase change material mixed with water for natural convection cooling in combination with nickel foam
dc.typeArticle

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