Numerical study of gas mixture separation in curved nozzles
•Pressure-driven gas separation in a curved nozzle is numerically simulated.•The optimum flow cut and inlet pressure is numerically determined.•Exit pressure affects pressure distribution along the inner wall of the nozzle.•The results are compared with measurements with air showing good agreement....
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Veröffentlicht in: | International journal of heat and mass transfer 2016-07, Vol.98, p.176-182 |
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Hauptverfasser: | , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | •Pressure-driven gas separation in a curved nozzle is numerically simulated.•The optimum flow cut and inlet pressure is numerically determined.•Exit pressure affects pressure distribution along the inner wall of the nozzle.•The results are compared with measurements with air showing good agreement.
Species separation can be produced by imposing a pressure gradient in gaseous mixtures, which induces different molecular velocities depending on the molar weight. Pressure gradients can be achieved by centrifugal forces brought about by the passage of the gas through a curved nozzle at supersonic velocity. The efficiency of this process depends on the geometry of the nozzle as well as the flow operating conditions. The numerical solver Fluent was used in order to produce a model of the aerodynamics and the oxygen diffusion of a steady-state flow of air in a curved nozzle. The development of the pressure and O2 concentration profiles along the nozzle were analyzed for different pressure boundary conditions at the inlet and the exit, testing several nozzle sizes. Optimum values of the cut and the inlet pressure were found which maximize the separation efficiency. The effect of the exit pressure was associated with the axial pressure distribution along the inner wall of the nozzle. The results were compared with measurements showing good agreement. |
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ISSN: | 0017-9310 1879-2189 |
DOI: | 10.1016/j.ijheatmasstransfer.2016.03.015 |