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A Numerical Study of Heat Transfer and Fluid Flow in a Channel with an Array of Pin Fins in Aligned and Staggered Configurations

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dc.contributor.author Issa, Johnny
dc.contributor.author Saliba, Najib
dc.contributor.author El Cheikh, Amina
dc.date.accessioned 2021-11-02T14:14:32Z
dc.date.available 2021-11-02T14:14:32Z
dc.date.copyright 2018 en_US
dc.date.issued 2021-11-02
dc.identifier.isbn 9781538612729 en_US
dc.identifier.uri http://hdl.handle.net/10725/13067
dc.description.abstract Heat transfer and fluid flow in a channel with an array of pin fins is numerically investigated using a finite volume approach. Rectangular pin fins with circular cross sections are used in this investigation. The working fluid is air with constant physical properties. Steady, laminar flow with uniform velocity and temperature profiles approaches the pin fin array. Nine fin rows are stacked in aligned and staggered configurations, and fins are modeled as no-slip walls with uniform temperature boundary condition. The dimensionless spacing, S*, defined as the ratio of the gap between the fin walls to the fin diameter, is varied between a value of 0.5 and 1. Nine different approaching velocities are considered in this study which resulted in Reynolds number values ranging between 5 and 160. In the aligned configuration, the calculated average fin Nusselt number showed its highest value at the first row of fins. It then decayed with increasing number of rows, N, a behavior that was consistently observed for every considered Reynolds number and for both spacing values S*. In the staggered configuration, the same behavior was observed at low Reynolds number values. However, as Reynolds number is increased, the maximum average fin Nusselt number value moved to the second row of fins, a fact that was attributed to the speeding flow field by the first row of fins. The percentage decay of Nusselt number with respect to the number of fin rows N showed a large dependence on Reynolds number, the stacking configuration, and the dimensionless spacing, S*. The pressure coefficient, C p , showed a developing region close to the inlet and a fully developed region as the number of fin rows is increased. The fin array effectiveness, defined as the average Nusselt number to the aggregate pressure coefficient, for all fins in a single row in the streamwise direction, was shown to decrease in the direction of the flow. The staggered configuration showed a better performance than the aligned configuration, at fixed S*, in the first few streamwise rows. Fin array configurations with large spacing ratio, S*, showed a better performance than smaller spacing ones. For fin arrays with a large row number in the streamwise direction, the best performance was obtained in the case corresponding to the aligned configuration with the large spacing ratio, S* = 1. en_US
dc.description.sponsorship IEEE Electronics Packaging Society en_US
dc.language.iso en en_US
dc.publisher Institute of Electrical and Electronics Engineers en_US
dc.subject Electronic apparatus and appliances -- Thermal properties -- Congresses en_US
dc.subject Heat sinks (Electronics) -- Congresses en_US
dc.title A Numerical Study of Heat Transfer and Fluid Flow in a Channel with an Array of Pin Fins in Aligned and Staggered Configurations en_US
dc.type Conference Paper / Proceeding en_US
dc.author.school SOE en_US
dc.author.idnumber 201705688 en_US
dc.author.department Industrial And Mechanical Engineering en_US
dc.description.physdesc 603 pages en_US
dc.publication.place Piscataway, N.J. en_US
dc.keywords Heat transfer en_US
dc.keywords Pins en_US
dc.keywords Electron tubes en_US
dc.keywords Fluid flow en_US
dc.keywords Fluids en_US
dc.keywords Boundary conditions en_US
dc.keywords Mathematical model en_US
dc.description.bibliographiccitations Includes bibliographical references en_US
dc.identifier.doi https://doi.org/10.1109/ITHERM.2018.8419645 en_US
dc.identifier.ctation Issa, J., Saliba, N., & El Cheikh, A. (2018, May). A Numerical Study of Heat Transfer and Fluid Flow in a Channel with an Array of Pin Fins in Aligned and Staggered Configurations. In 2018 17th IEEE Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems (ITherm) (pp. 513-520). IEEE. en_US
dc.author.email amne.elcheikh@lau.edu.lb en_US
dc.conference.date May 29 - June 1, 2018 en_US
dc.conference.pages 513-520 en_US
dc.conference.place Sharaton Harbor Island Hotel, San Diego, CA USA en_US
dc.conference.subtitle proceedings of the seventeenth InterSociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems en_US
dc.conference.title ITherm 2018 en_US
dc.identifier.tou http://libraries.lau.edu.lb/research/laur/terms-of-use/articles.php en_US
dc.identifier.url https://ieeexplore.ieee.org/abstract/document/8419645 en_US
dc.orcid.id https://orcid.org/0000-0003-0459-8145 en_US
dc.publication.date 2018 en_US
dc.author.affiliation Lebanese American University en_US


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