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Numerical analysis of vortex dynamics in hyperbolic funnels using computational fluid dynamics

  • Teja Donepudi
  • , Maarten van de Griend
  • , Luewton L.F. Agostinho
  • , Esther de Kroon
  • , Roman Klymenko
  • , Rene Pecnik
  • , Jakob Woisetschläger
  • , Elmar Fuchs (Corresponding author)

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Experimental investigations into the characterization of vortices in hyperbolic funnels have shown efficient aeration properties. Certain regimes of vortices have been observed to exhibit high gas dissolution rates. This phenomenon has prompted inquiries into the underlying physical mechanisms at both micro and macroscopic scales. The present study employs computational fluid dynamics to numerically analyze the flow field organization inside these vortices, aiming to elucidate the observed high gas transfer rates. Transient simulations are performed on a three-dimensional radially structured hexahedral mesh, utilizing a multiphase Euler–Euler approach-based volume of fluid method for modeling, along with shear stress transport turbulence modeling based on k−ω
equations with curvature correction. The evaluation of the two vortex regimes was conducted in terms of hydraulic retention time, water volume in the reactor, air–water interfacial area, and bulk mixing. Instabilities resembling Taylor vortices observed in Taylor–Couette flow systems emerge in the secondary flow field of these vortical structures, facilitating turbulent mixing. A qualitative analysis of the strength of these instabilities in terms of average vorticity per unit mass of water explains the high gas transfer efficiency. Despite high gas transfer rates, water exiting the funnel remains undersaturated under given operating conditions due to the short hydraulic retention time.
Original languageEnglish
Article number095171
JournalPhysics of Fluids
Volume36
Issue number9
DOIs
Publication statusPublished - Sept 2024
Externally publishedYes

Funding

This work was performed in the cooperation framework of Wetsus European Center of Excellence for Sustainable Water Technology (www.wetsus.eu) within the Applied Water Physics theme. Wetsus is cofounded by the Dutch Ministry of Economic Affairs and Ministry of Infrastructure and Environment, The Province of Fryslan, and the Northern Netherlands Provinces. The authors partially generated this text in part with GPT-3, OpenAI's large-scale language-generation model, as well as deepL neural machine translation for grammar and phrasing corrections. Upon generating the draft language, the authors reviewed, edited, and revised the language to their own liking and take ultimate responsibility for the content of this publication.

Keywords

  • Aeration systems
  • Hyperbolic funnels
  • Vortex flows
  • Computational fluid dynamics
  • Multi-phase simulations
  • Turbulence modelling
  • Instabilities

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