Convection heat transfer of CO 2 at supercritical pressures in vertical sintered porous tubes with particle diameters of 0.1-0.12 mm and 0.2-0.28 mm was investigated experimentally and numerically. The study investigated the influence of the inlet fluid temperature, mass flow rate, pressure, particl
CFD modeling of heat transfer of CO2 at supercritical pressures flowing vertically in porous tubes
โ Scribed by Masoud Haghshenas Fard
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 533 KB
- Volume
- 37
- Category
- Article
- ISSN
- 0735-1933
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โฆ Synopsis
Computational fluid dynamics (CFD) tool has been used for investigation of convective heat transfer of CO 2 in two porous tubes. Effects of some important parameters such as pressure, inlet temperature, mass flow rate, wall heat flux and porosity on temperature distribution and local heat transfer coefficients have been studied numerically. Near the supercritical conditions, these parameters are very effective on temperature gradient and local heat transfer coefficients. For example at p = 9.5 MPa, under the same conditions, the heat transfer coefficient in a tube with particle diameters of 0.1-0.12 mm is about 20-30% higher than when the particle diameter of 0.2-0.28 mm were used. The heat transfer coefficient increases with decreasing pressure and increasing mass flow rate. Also the porosity of the bed has the important role on the heat transfer. The CFD predictions have been compared to the experimental data and showed pretty good agreement.
๐ SIMILAR VOLUMES
## ANFIS) Heat transfer of supercritical fluids has been the subject of many investigations; however, since the analysis of heat transfer in these fluids established by a mathematical model based on the planning parameters is complicated, this study attempts to provide a model for convection heat