Abstrakti
Polymer additives are commonly utilized to manipulate bubbly flows in various applications. Here we investigate the effects of clean and contaminated bubbles driven upward (upflow) in Newtonian and viscoelastic turbulent channel flows. Interface-resolved direct numerical simulations are performed to examine sole and combined effects of soluble surfactant and viscoelasticity using an efficient three-dimensional finite-difference-front-tracking method. The incompressible flow equations are solved fully coupled with the FENE-P viscoelastic model and the equations governing interfacial and bulk surfactant concentrations. The latter coupling is accomplished by a nonlinear equation of state that relates the surface tension to the surfactant concentration. For Newtonian turbulent bubbly flows, the effects of Triton X-100 and 1-pentanol surfactant are examined. It is observed that the sorption kinetics highly affect the dynamics of bubbly flow. A minute amount of Triton X-100 is found to be sufficient to prevent the formation of bubble clusters restoring the single-phase behavior while even two orders of magnitude more 1-pentanol surfactant is not adequate to prevent the formation of layers. For viscoelastic turbulent flows, it is found that the viscoelasticity promotes formation of the bubble wall-layers and thus the polymer drag reduction is completely lost for the surfactant-free bubbly flows, while the addition of small amount of surfactant (Triton X-100) in this system restores the polymer drag reduction resulting in 25% drag reduction for the Wi = 4 case.
| Alkuperäiskieli | Englanti |
|---|---|
| Artikkeli | 104302 |
| Sivumäärä | 22 |
| Julkaisu | Physical Review Fluids |
| Vuosikerta | 6 |
| Numero | 10 |
| DOI - pysyväislinkit | |
| Tila | Julkaistu - 4 lokak. 2021 |
| OKM-julkaisutyyppi | A1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä |
Rahoitus
We acknowledge financial support by the Swedish Research Council through Grant No. VR20144809. This project also has received funding from the European Research Council (ERC) Starting Grant No. 852529 under the European Union's Horizon 2020 research and innovation programme (StG MUCUS, No. 852529). This effort receives funding by the Aalto Science Foundation (ASCI) for funding the PENGUIN project. M.M. acknowledges financial support from TUBITAK Grant No. 115M688. We acknowledge PRACE for awarding us access to JUWELS at GCS@FZJ,Germany.Additional computational time was provided by Swedish National Infrastructure for Computing. P.C. acknowledges funding from the University of Iceland Recruitment Fund Grant No. 1515151341, TURBBLY.
Sormenjälki
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