Modeling Droplet Breakage in Continuous Emulsification Using Static Mixers in the Framework of the Entire Spectrum of Turbulent Energy
| dc.contributor.author | Lebaz, Noureddine | |
| dc.contributor.author | Azizi, F. | |
| dc.contributor.author | Sheibat-Othman, Nida | |
| dc.contributor.department | Department of Chemical and Petroleum Engineering | |
| dc.contributor.faculty | Maroun Semaan Faculty of Engineering and Architecture (MSFEA) | |
| dc.contributor.institution | American University of Beirut | |
| dc.date.accessioned | 2025-01-24T11:26:34Z | |
| dc.date.available | 2025-01-24T11:26:34Z | |
| dc.date.issued | 2022 | |
| dc.description.abstract | Droplet breakage during continuous emulsification in static mixers is investigated in this work. It is clearly shown that for viscous continuous phases, droplet breakage occurs mostly in the dissipation range of isotropic turbulence. To consider this, a modified breakage kernel of Coulaloglou and Tavlarides based on the full turbulence spectrum of Pope is employed within a population balance model to describe the time evolution of the droplet size distribution during the emulsification process. This full spectrum-based model is tested against a wide range of experimental data and shown to be predictive and accurate. The full spectrum-based model requires the knowledge of the mean turbulent kinetic energy and the mean energy dissipation rate that are obtained from computational fluid dynamic (CFD) simulations. To allow a rapid implementation of the model without time-consuming CFD simulations, a model reduction is proposed based on mean energy dissipation rate estimation through pressure drop measurements only. The new model gives comparable predictive capabilities to those based on CFD simulations with improved computational efficiency. © 2021 American Chemical Society | |
| dc.identifier.doi | https://doi.org/10.1021/acs.iecr.1c03529 | |
| dc.identifier.eid | 2-s2.0-85121725312 | |
| dc.identifier.uri | http://hdl.handle.net/10938/26637 | |
| dc.language.iso | en | |
| dc.publisher | American Chemical Society | |
| dc.relation.ispartof | Industrial and Engineering Chemistry Research | |
| dc.source | Scopus | |
| dc.subject | Computational efficiency | |
| dc.subject | Computational fluid dynamics | |
| dc.subject | Drops | |
| dc.subject | Emulsification | |
| dc.subject | Energy dissipation | |
| dc.subject | Kinetics | |
| dc.subject | Mixers (machinery) | |
| dc.subject | Pressure drop | |
| dc.subject | Turbulence | |
| dc.subject | Turbulent flow | |
| dc.subject | Computational fluid dynamics simulations | |
| dc.subject | Continuous phase | |
| dc.subject | Energy dissipation rate | |
| dc.subject | Full-spectrum | |
| dc.subject | Isotropic turbulence | |
| dc.subject | Mean energy | |
| dc.subject | Phase droplets | |
| dc.subject | Spectra's | |
| dc.subject | Static mixers | |
| dc.subject | Turbulent energies | |
| dc.subject | Kinetic energy | |
| dc.title | Modeling Droplet Breakage in Continuous Emulsification Using Static Mixers in the Framework of the Entire Spectrum of Turbulent Energy | |
| dc.type | Article |
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