This paper describes in detail the assessment of the CFD code CFX to predict adiabatic liquid-gas two-phase bubbly flow. This study has been divided into two parts. In the first exercise, the effect of Lift Force, Wall Force and the Turbulent Diffusion Force have been assessed using experimental data from the literature for air-water upward bubbly flows through a pipe. The data used here had a characteristic near wall void peaking which was largely influenced by the joint action of the three forces mentioned above. The simulations were performed with constant bubble diameter assuming no bubble interactions. This exercise resulted in selection of the most appropriate closure form and closure coefficients for the above mentioned forces for the range of flow conditions chosen. In the second exercise, the One-Group Interfacial Area Transport equation was introduced in the two-fluid model of CFX. The interfacial area density plays important role in the correct prediction of interfacial mass, momentum and energy transfer and is affected by bubble breakup and coalescence processes in adiabatic flows. The One-Group Interfacial Area Transport Equation (IATE) has been developed and implemented for one-dimensional models and validated using cross-sectional area averaged experimental data over the last decade by various researchers. The original one-dimensional model has been extended to multidimensional flow predictions in this study and the results are presented in this paper. The paper also discusses constraints posed by the commercial CFD code CFX and the solutions worked out to obtain the most accurate implementation of the model.
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ASME 2009 Fluids Engineering Division Summer Meeting
August 2–6, 2009
Vail, Colorado, USA
Conference Sponsors:
- Fluids Engineering Division
ISBN:
978-0-7918-4372-7
PROCEEDINGS PAPER
Two-Fluid CFD Model of Adiabatic Air-Water Upward Bubbly Flow Through a Vertical Pipe With a One-Group Interfacial Area Transport Equation Available to Purchase
Deoras Prabhudharwadkar,
Deoras Prabhudharwadkar
Purdue University, West Lafayette, IN
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Chris Bailey,
Chris Bailey
Purdue University, West Lafayette, IN
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Martin Lopez de Bertodano,
Martin Lopez de Bertodano
Purdue University, West Lafayette, IN
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John R. Buchanan, Jr.
John R. Buchanan, Jr.
Bechtel Marine Propulsion Corporation, West Mifflin, PA
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Deoras Prabhudharwadkar
Purdue University, West Lafayette, IN
Chris Bailey
Purdue University, West Lafayette, IN
Martin Lopez de Bertodano
Purdue University, West Lafayette, IN
John R. Buchanan, Jr.
Bechtel Marine Propulsion Corporation, West Mifflin, PA
Paper No:
FEDSM2009-78306, pp. 851-861; 11 pages
Published Online:
July 26, 2010
Citation
Prabhudharwadkar, D, Bailey, C, Lopez de Bertodano, M, & Buchanan, JR, Jr. "Two-Fluid CFD Model of Adiabatic Air-Water Upward Bubbly Flow Through a Vertical Pipe With a One-Group Interfacial Area Transport Equation." Proceedings of the ASME 2009 Fluids Engineering Division Summer Meeting. Volume 1: Symposia, Parts A, B and C. Vail, Colorado, USA. August 2–6, 2009. pp. 851-861. ASME. https://doi.org/10.1115/FEDSM2009-78306
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