Modelling the Effect of Particle Size Distribution in Multiphase Flows with Computational Fluid Dynamics and Physical Erosion Experiments

被引:1
|
作者
Wong, Chong Y. [1 ]
Boulanger, Joan [1 ]
Short, Gregory [1 ]
机构
[1] 37 Graham Rd,Highett Rd, Highett, Vic 3190, Australia
关键词
multiphase flows; particle size effect; CFD; solid particle erosion; SLURRY EROSION; MECHANISTIC MODEL; 2-PHASE FLOW;
D O I
10.4028/www.scientific.net/AMR.891-892.1615
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
It is known that particle size has an influence in determining the erosion rate, and hence equipment life, on a target material in single phase flows (i.e. flow of solid particles in liquid only or gas only flows). In reality this is rarely the case for field applications in the oil and gas industry. Field cases are typically multiphase in nature, with volumetric combinations of gas, liquid and sand. Erosion predictions of multiphase flows extrapolated from single phase flow results may sometimes be overly conservative or severely under-predict reality. Current understanding of particle size distribution on material erosion in multiphase flows is limited. This work examines the effect of particle size distribution on material erosion of a cylindrical aluminium rod positioned in a 2 '' vertical pipe under slug and distributed bubble regimes using various water and air volume ratios. This is achieved through physical erosion experiments and Computational Fluid Dynamics (CFD) simulations which are well suited to interpret the effect of particle dynamics and fluid mechanics on erosion in multiphase flows.
引用
收藏
页码:1615 / +
页数:2
相关论文
共 50 条
  • [31] MODELING COMPUTATIONAL FLUID DYNAMICS OF MULTIPHASE FLOWS IN ELBOW AND T-JUNCTION OF THE MAIN GAS PIPELINE
    Doroshenko, Yaroslav
    Doroshenko, Julia
    Zapukhliak, Vasyl
    Poberezhny, Lyubomyr
    Maruschak, Pavlo
    [J]. TRANSPORT, 2019, 34 (01) : 19 - 29
  • [32] EFFECT OF PARTICLE SIZE DISTRIBUTION ON EROSION WEAR IN CENTRIFUGAL PUMP CASINGS
    Pagalthivarthi, Krishnan V.
    Furlan, John M.
    Visintainer, Robert J.
    [J]. PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2013, VOL 1C: SYMPOSIA, 2014,
  • [33] EFFECT OF PARTICLE-SIZE DISTRIBUTION ON THE EROSION RATE OF BRITTLE MATERIALS
    MARSHALL, DB
    EVANS, AG
    GULDEN, ME
    [J]. AMERICAN CERAMIC SOCIETY BULLETIN, 1980, 59 (08): : 825 - 825
  • [34] Neutrally buoyant particle dynamics in fluid flows: Comparison of experiments with Lagrangian stochastic models
    Sapsis, Themistoklis P.
    Ouellette, Nicholas T.
    Gollub, Jerry P.
    Haller, George
    [J]. PHYSICS OF FLUIDS, 2011, 23 (09)
  • [35] Mixed solids distribution in stirred vessels: Experiments and computational fluid dynamics simulations
    Montante, Giuseppina
    Magelli, Franco
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2007, 46 (09) : 2885 - 2891
  • [36] Evaluation of air diffuser flow modelling methods experiments and computational fluid dynamics simulations
    Fontaine, JR
    Rapp, R
    Koskela, H
    Niemelä, R
    [J]. BUILDING AND ENVIRONMENT, 2005, 40 (03) : 377 - 389
  • [37] Solid Particle Erosion on Shield Surface of a Helicopter Rotor Blade Using Computational Fluid Dynamics
    Ozen, Ismail
    Gedikli, Hasan
    [J]. JOURNAL OF AEROSPACE ENGINEERING, 2019, 32 (01)
  • [38] A computational fluid dynamics based artificial neural network model to predict solid particle erosion
    Pandya, D. A.
    Dennis, B. H.
    Russell, R. D.
    [J]. WEAR, 2017, 378-379 : 198 - 210
  • [39] Critical Inlet Pressure Prediction for Inline Piston Pumps Using Multiphase Computational Fluid Dynamics Modelling
    Sachdeva, Aniket
    Borkar, Kishor
    Bhansali, Anil
    Salutagi, Shivayogi
    [J]. SAE INTERNATIONAL JOURNAL OF AEROSPACE, 2021, 14 (02): : 117 - 126
  • [40] Computational fluid dynamics modelling and validation of the temperature distribution in a forced convection oven
    Verboven, P
    Scheerlinck, N
    De Baerdemaeker, J
    Nicolaï, BM
    [J]. JOURNAL OF FOOD ENGINEERING, 2000, 43 (02) : 61 - 73