On the modelling of bubbly flow in vertical pipes

被引:146
|
作者
Krepper, E [1 ]
Lucas, D [1 ]
Prasser, HM [1 ]
机构
[1] Rossendorf Inc, Forschungszentrum Rossendorf EV, Inst Safety Res, D-01314 Dresden, Germany
关键词
D O I
10.1016/j.nucengdes.2004.09.006
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
To qualify CFD codes for two-phase flows, they have to be equipped with constitutive models standing for the interaction between the gaseous and the liquid phases. In case of bubbly flow this particularly concerns the forces acting on the bubbles and bubble coalescence and break-up. Applying a two fluid approach, besides the drag forces describing the momentum exchange in flow direction, the non-drag forces acting perpendicular to the flow direction play an important role for the development of the flow structure. Gas-liquid flow in vertical pipes is a very good object for studying the corresponding phenomena. Here, the bubbles move under clear boundary conditions, resulting in a shear field of nearly constant structure where the bubbles rise for a comparatively Iona time. The evolution of the flow within the pipe depends on a very complex interaction between bubble forces and bubble coalescence and break-up, e.g. the lift-force, which strongly influences the radial distribution of the bubbles, changes it sign depending on the bubble diameter. The consequence is the radial separation of small and large bubbles. Neglecting this phenomenon, models are not able to describe the correct flow structure. Extensive experiments measuring the radial gas volume fraction distribution, the bubble size distribution and the radial residence of bubbles dependent on their size were determined for different distances from the gas injection. Basing on these experiments the applicability and the limits for the simulation of bubble flow with current CFD-codes are demonstrated, using the simulation of vertical pipe flow with CFX-4 as an example. Using a simplified model focusing particularly on the radial phenomena described above, parametric studies were conducted. They give at indication for necessary improvements of the codes. Finally a possible way for the improvement of the CFD-codes is shown. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:597 / 611
页数:15
相关论文
共 50 条
  • [1] Gas-liquid bubbly flow in vertical pipes (Data Bank contribution)
    Nakoryakov, VE
    Kashinsky, ON
    Randin, VV
    Timkin, LS
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1996, 118 (02): : 377 - 382
  • [2] THE RADIAL MIGRATION OF BUBBLES IN TWO-PHASE BUBBLY FLOW IN VERTICAL PIPES
    Shawkat, Mohamed E.
    Ching, Chan Y.
    Shoukri, Mamdouh
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER CONFERENCE, VOL 1, PTS A AND B, 2006, : 1833 - 1840
  • [3] Two-phase bubbly flow structure in large-diameter vertical pipes
    Shoukri, M
    Hassan, I
    Gerges, I
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2003, 81 (02): : 205 - 211
  • [4] Solution pipes and focused vertical water flow: Geomorphology and modelling
    Lipar, Matej
    Szymczak, Piotr
    White, Susan Q.
    Webb, John A.
    EARTH-SCIENCE REVIEWS, 2021, 218
  • [5] HYBRID MULTIPHASE CFD MODEL FOR BUBBLY, SLUG, CHURN AND ANNULAR FLOW REGIMES IN VERTICAL PIPES
    Agrawal, Madhusuden
    Khanna, Samir
    Kopliku, Ardjan
    Lockett, Timothy
    PROCEEDINGS OF ASME 2022 41ST INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE & ARCTIC ENGINEERING, OMAE2022, VOL 7, 2022,
  • [6] Mathematical Model For Bubbly Water-Heavy Oil-Gas Flow in Vertical Pipes
    Cazarez-Candia, O.
    Montoya-Hernandez, D.
    Vital-Ocampo, A. G.
    PETROLEUM SCIENCE AND TECHNOLOGY, 2009, 27 (15) : 1715 - 1726
  • [7] ADIABATIC HOMOGENEOUS BUBBLY FLOW IN HORIZONTAL PIPES
    HUEY, CT
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1966, 44 (06): : 313 - &
  • [8] PHENOMENOLOGICAL MODEL FOR DISPERSED BUBBLY FLOW IN PIPES
    NIKITOPOULOS, DE
    MICHAELIDES, EE
    AICHE JOURNAL, 1995, 41 (01) : 12 - 22
  • [9] Structure of vertical downward bubbly flow
    Hibiki, T
    Goda, H
    Kim, S
    Ishii, M
    Uhle, J
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2004, 47 (8-9) : 1847 - 1862
  • [10] Modelling bubbly flow and its transitions in vertical annuli using population balance technique
    Das, A. K.
    Das, P. K.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2010, 31 (01) : 101 - 114