Enhancement of Heat Transfer in Partially Heated Vertical Channel Under Mixed Convection by Using Al2o3 Nanoparticles
Loading...
Files
Date
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Open Access Color
BRONZE
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
Laminar mixed convection in a two-dimensional symmetrically and partially heated vertical channel is investigated. The heaters are located on both walls and uniform temperature is applied on the heated sections. The number of heaters is considered as 1, 4, 8, and 10. Aluminum oxide/water nanofluid is considered as working fluid and the inlet velocity is uniform. The continuity, momentum and energy equations with appropriate boundary conditions are solved in dimensionless form, numerically. The study is performed for Richardson number of 0.01 and 10, Reynolds number of 100 and 500, and nanofluid volume fraction of 0% and 5%. Based on the obtained velocity and temperature distributions, the local and mean Nusselt number is calculated and plotted for different cases. The variation of the mean Nusselt number with the number of the heated portions is also discussed. It is found that the addition of nanoparticles into the base fluid increases mean Nusselt number but the rate of increase depends on Reynolds, Richardson numbers and number of heated portions. It is possible to increase mean Nusselt number 138% by increasing Reynolds number from 100 to 500, Richardson number from 0.01 to 10 and number of heated portions from 1 to 10 when volume fraction value is 5%.
Description
Keywords
Heat transfer, Mixed convection, Nanoparticles, Aluminum oxides, Condensed Matter Physics; Mechanical Engineering; Fluid Flow and Transfer Processes, Aluminum oxides, Heat transfer, Nanoparticles, Mixed convection
Fields of Science
01 natural sciences, 0104 chemical sciences
Citation
Çelik, H., Mobedi, M., Manca, O., and Buonomo, B. (2018). Enhancement of heat transfer in partially heated vertical channel under mixed convection by using Al2O3 nanoparticles. Heat Transfer Engineering, 39(3), 229-240. doi:10.1080/01457632.2017.1295738
WoS Q
Scopus Q

OpenCitations Citation Count
14
Volume
39
Issue
3
Start Page
229
End Page
240
PlumX Metrics
Citations
Scopus : 15
Captures
Mendeley Readers : 21
Google Scholar™


