dc.creatorUbal, Sebastian
dc.creatorHarrison, C. H.
dc.creatorGrassia, P.
dc.creatorKorchinsky, W. J.
dc.date.accessioned2017-03-09T20:08:25Z
dc.date.accessioned2018-11-06T13:01:54Z
dc.date.available2017-03-09T20:08:25Z
dc.date.available2018-11-06T13:01:54Z
dc.date.created2017-03-09T20:08:25Z
dc.date.issued2010-05
dc.identifierUbal, Sebastian; Harrison, C. H.; Grassia, P.; Korchinsky, W. J.; Numerical simulation of mass transfer in circulating drops; Elsevier; Chemical Engineering Science; 65; 10; 5-2010; 2934-2956
dc.identifier0009-2509
dc.identifierhttp://hdl.handle.net/11336/13698
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1872335
dc.description.abstractNumerical simulations of mass transfer are performed for a circulating liquid drop with applications in liquid–liquid extraction. Simulation parameters are chosen for a multi-component ternary system acetone–methanol–benzene. The drop circulation pattern is estimated via a truncated Galerkin representation of the drop streamfunction. Fickian diffusivities for multi-component mass transfer are obtained via Maxwell–Stefan theory with thermodynamic corrections. The advection–diffusion equations governing mass transfer are solved via two distinct numerical methods: a finite difference scheme (using the alternating direction implicit method) and a finite element scheme. Good agreement was obtained between both schemes. Simulation results are presented for a Reynolds number (Re=30) and for a selection of Peclet numbers (Pe=100, 1000 and 10 000, thereby giving insight into the effects of increasing Peclet number). The numerical simulations of the full advection–diffusion equations are compared against predictions of a rigid drop model (i.e. without circulation) and also against predictions of a semi-analytical boundary layer model developed by Uribe-Ramirez and Korchinsky. Results for bulk mass fractions reveal that the rigid drop model predictions evolve too slowly, while the boundary layer model predictions evolve much more quickly than the numerical simulations. Advection–diffusion simulation results for the evolution of mass fractions at selected individual locations in the drop show that points on streamlines nearest to the drop surface and/or drop axis evolve fastest, while those closest to the drop internal stagnation point evolve slowest. Corroborated by contour plots of component concentrations throughout the drop at selected times, this supports a picture whereby mass fractions become roughly uniform along individual streamlines, but mass is transferred diffusively from streamline to streamline.
dc.languageeng
dc.publisherElsevier
dc.relationinfo:eu-repo/semantics/altIdentifier/url/http://www.sciencedirect.com/science/article/pii/S0009250910000382
dc.relationinfo:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1016/j.ces.2010.01.021
dc.rightshttps://creativecommons.org/licenses/by-nc-nd/2.5/ar/
dc.rightsinfo:eu-repo/semantics/restrictedAccess
dc.subjectMASS TRANSFER
dc.subjectCIRCULATING DROP MODEL
dc.subjectCONVECTIVE TRANSPORT
dc.subjectHIGH PECLET NUMBER
dc.subjectCROSS-STREAM DIFFUSION
dc.subjectBOUNDARY LAYERS
dc.subjectMATHEMATICAL MODELLING
dc.subjectNUMERICAL ANALYSIS
dc.subjectSIMULATION
dc.subjectLIQUID-LIQUID EXTRACTION
dc.titleNumerical simulation of mass transfer in circulating drops
dc.typeArtículos de revistas
dc.typeArtículos de revistas
dc.typeArtículos de revistas


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