The effects of different geometrical parameters, including tube row numbers (14 rows), wavy angles (0 = 8.95", 17.05", 32.21") and wavy heights (S = 0.751, 1.500 and 3.003 mm) are investigated in detail for the Reynolds number ReH (based on the fin spacing and the frontal velocity) ranging from 400
Numerical analysis of fluid flow and heat transfer in periodic wavy channels
✍ Scribed by B Ničeno; E Nobile
- Publisher
- Elsevier Science
- Year
- 2001
- Tongue
- English
- Weight
- 861 KB
- Volume
- 22
- Category
- Article
- ISSN
- 0142-727X
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✦ Synopsis
The two-dimensional steady and time-dependent fluid flow and heat transfer through periodic, wavy channels is numerically studied, for a fluid with a Prandtl number of 0.7, by means of an unstructured covolume method. The two geometrical configurations considered, a sinusoidal channel and an arc-shaped channel, are shown to provide little or no heat transfer augmentation, in comparison to a parallel-plate channel, in steady flow regimes at lower values of the Reynolds number. In addition, they both have higher pressure drop than that of the parallel-plate channel under fully developed flow conditions. For the unsteady regime, reached at about Re=175–200 for the sinusoidal channel, and Re=60–80 for the arc-shaped channel, both geometries exhibit a significant increase in the heat transfer rate, up to three times for the highest Reynolds number investigated. This increase is higher for the arc-shaped flow passage, but is accompanied by a higher friction factor than that of the sinusoidal channel.
📜 SIMILAR VOLUMES
A finite difference analysis of heat conduction problem in a cylinder terminating in a frustum of a cone is presented. The constriction can be either in vacuum or in a gaseous environment. A fine mesh of 2500 • 800 was used for the construction of the grid such that very small constrictions could be