Inhomogeneous MUSIG model – a population balance approach for polydispersed bubbly flows


Inhomogeneous MUSIG model – a population balance approach for polydispersed bubbly flows

Krepper, E.; Frank, T.; Lucas, D.; Prasser, H.-M.; Zwart, P. J.

A generalized inhomogeneous Multiple Size Group (MUSIG) Model based on the Eulerian modeling framework was developed in close cooperation of ANSYS-CFX and Forschungszentrum Dresden-Rossendorf and implemented into CFX-10. Simulating a poly-dispersed gaseous liquid two phase flow along with the mass exchanged between bubble size classes by bubble coalescence and bubble fragmentation and the momentum exchange of bubble size dependent bubble forces have to be considered. Particularly the lift force has been proved to play an important role establishing a certain flow regime.
The derived model has been validated against experimental data from the TOPFLOW test facility at the Forschungszentrum Dresden (FZD). The wire mesh measuring technology measuring local gas volume fractions, bubble size distributions and velocities of gas and liquid was applied. Numerous tests investigating air water flow and steam water flow at saturation conditions in vertical pipes having a length up to 8 m and a diameter up to 200 mm were performed and used for model validation. To check the model framework for a more complex flow situation in further experiments on the flow field around a half moon shaped asymmetric obstacle were performed and simulated by applying the inhomogeneous MUSIG model.
The paper describes the main concepts of the model approach and presents model validation and application cases. The inhomogeneous MUSIG model approach was shown to be able to describe of bubbly flow with higher gas content. Particularly the separation phenomenon of small and large bubbles which was proven to be a key phenomenon for the establishment of the corresponding flow regime is well described. Weaknesses in this approach can be attributed to the characterization of bubble coalescence and bubble fragmentation, which must be further investigated.

Keywords: Bubbly flow; CFD; Non-drag forces; bubble break up; bubble coalescence; population balance; validation

  • Contribution to proceedings
    NURETH-12 - International Topical Meeting on Nuclear Reactor Thermal Hydraulics, 30.09.-04.10.2007, Pittsburgh, USA
  • Lecture (Conference)
    NURETH-12 - International Topical Meeting on Nuclear Reactor Thermal Hydraulics, 30.09.-04.10.2007, Pittsburgh, USA

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