Direct numerical simulations of bubble-mediated gas transfer and dissolution in the quiescent and turbulent flow
ORAL
Abstract
Mass transfer of gases at the ocean-atmosphere interface is significantly enhanced by air entrainment by breaking waves. The bubbles formed are subjected to highly turbulent flow are critical to the mass transfer of gases as the molecular diffusivity of atmospheric gases is very low (Sc ≈ 600). We develop a numerical method for gas transfer in two-phase flows, including volume change effects. We investigate the bubble rising in quiescent flow and suspended in homogeneous and isotropic turbulent (HIT) flow. We show the dissolution of a single component bubble rising in quiescent flow can be described by the classic Levich formula (Levich, 1962). We show that for the bubble suspended in homogeneous and isotropic turbulent (HIT) flow, the mass transfer coefficient kL is governed by the smallest scales in the flow, the Kolmogorov η and Batchelor ηB microscales, and is independent from the bubble size. We present a model for mass transfer coefficient as a function of Reynolds and Schmidt numbers and is verified in the range of 50 < Pe < 5 x 104.
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Publication: P. K. Farsoiya, Q. Magdelaine, A. Antkowiak, S. Popinet, and L. Deike, Direct numerical simulations of bubble-mediated<br>gas transfer and dissolution in the quiescent and turbulent flow, Under review
Presenters
Palas Kumar K Farsoiya
Princeton University
Authors
Palas Kumar K Farsoiya
Princeton University
Quentin Magdelaine
Institut Jean Le Rond d'Alembert, CNRS UMR 7190, Sorbonne Université, Paris 75005, France
Arnaud Antkowiak
Institut Jean le Rond d'Alembert, Sorbonne Universite, Institut Jean Le Rond d'Alembert, CNRS UMR 7190, Sorbonne Université, Paris 75005, France
Stéphane Popinet
Sorbonne University, d'Alembert., Sorbonne Universite, CNRS, Sorbonne Université, Institut Jean Le Rond d'Alembert, CNRS UMR 7190, Sorbonne Université, Paris 75005, France