Heat Transfer Enhancement in Stirling Engine Using Fins with Different Configurations and Geometries
Keywords
CFD, simulation, fins effectiveness, fins efficiency, stirling engine, heat transfer
Document Type
Research Article
Abstract
The temperature difference across a Stirling engine cylinder is one of the main factors contributing to the power output and efficiency. Stirling engine is a heat engine that operates through expansion and compression cycles through different fluid temperatures. In addition, the engine was noted to have three different configurations, which include the alpha, beta, and gamma types, which are discussed in work. This study aims to investigate the effect of adding various fin geometries on different engine cylinder locations to simulate and visualize heat transfer enhancement across the cylinder. The various configurations were simulated through the ANSYS Fluent commercially available CFD model, which was used to simulate the temperature difference on the hot and cold ends of the tested fins. A validation model of mesh element sizing was also implemented to determine the accuracy of the achieved numbers. Moreover, Fusion360 was used to 3D design different geometries, including annular, conical and rectangular fins. Furthermore, lastly, validation of the obtained simulated results was conducted to monitor the accuracy of the simulation through two different methods. An effectiveness of 8.17 was obtained through the simulation for annular fins; in addition, it was found that annular fins achieved the best temperature distribution among the selection of geometries and configurations simulated, which was recorded as 223°C for the hot end and 40°C for the cold end
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Recommended Citation
Ramahi, Ahmad; Hamdan, Hasan; and Dol, Sharul Sham
(2022)
"Heat Transfer Enhancement in Stirling Engine Using Fins with Different Configurations and Geometries,"
Platform: A Journal of Engineering (PAJE): Vol. 6:
Iss.
4, Article 1.
Available at:
https://journal.utp.edu.my/paje/vol6/iss4/1
Publication Date
31-12-2022
First Page
2
Last Page
13


