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RANS modeling of flow structure and turbulent heat transfer in pulsed gas-droplet mist jet impingement
The turbulent flow structure and heat transfer of a pulsed gas-droplet impinging mist jet with low mass fraction of droplets (not more than 2%) are numerically carried out. A set of non-steady-state RANS equations for the two-phase flow is utilized. The dispersed phase is modeled by the Eulerian app...
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Published in: | International journal of thermal sciences 2016-02, Vol.100, p.284-297 |
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Main Authors: | , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | The turbulent flow structure and heat transfer of a pulsed gas-droplet impinging mist jet with low mass fraction of droplets (not more than 2%) are numerically carried out. A set of non-steady-state RANS equations for the two-phase flow is utilized. The dispersed phase is modeled by the Eulerian approach. Gas turbulence is computed with the Reynolds stress model for two-phase flow. The interaction between phases (two-way coupling) is considered by the addition of extra terms in equations for the mean and fluctuating motion. The effects of pulse frequencies, ratio of on time to total cycle time, distances between pipe outlet and impinging flat plate and Reynolds number on heat transfer are numerically studied. It is shown that both the increase (up to 45%) and the suppression (up to 25%) of heat transfer are characteristic of pulsed gas-droplet jet impingement, differently from the steady-state one. Reduced heat transfer in comparison with the steady-state impinging jet is typically in the low frequency range. The impingement heat transfer initially increases with distance from the pipe edge and target surface and the heat transfer decreases at distance from the pipe edge and flat plate.
•Numerical modeling of the turbulent flow structure and heat transfer in a gas-droplet pulsed impinging jet is carried out.•The dispersed phase is modeled by the Eulerian approach.•The effects of pulse frequencies, ratio of on time to total cycle time on heat transfer are numerically studied.•It is shown both the increase and the reduction of heat transfer are characteristic of pulsed gas-droplet jet impingement. |
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ISSN: | 1290-0729 1778-4166 |
DOI: | 10.1016/j.ijthermalsci.2015.09.029 |