Laminar Flow Characterization in a Stirred Tank with a Gate Impeller in Case of a Non-Newtonian Fluid

被引:5
|
作者
Rahmani, Lakhdar [1 ]
Mebarki, Brahim [1 ]
Allaoua, Boumediene [1 ]
Draoui, Belkacem [2 ]
机构
[1] BECHAR Univ, Fac Sci & Technol, Dept Technol, BP 417, Bechar 08000, Algeria
[2] BECHAR Univ, ENERGARID, Bechar 08000, Algeria
来源
TERRAGREEN 13 INTERNATIONAL CONFERENCE 2013 - ADVANCEMENTS IN RENEWABLE ENERGY AND CLEAN ENVIRONMENT | 2013年 / 36卷
关键词
Mechanical agitation; finite volume method; Bingham fluid; Rheology; gate impeller; laminar flow; 2D modelling; Power consumption; YIELD-STRESS FLUIDS; VESSELS;
D O I
10.1016/j.egypro.2013.07.048
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A large number of chemical operations, biochemical or petrochemical industry is very depending on the rheological fluids nature. In this work, we study the case of highly viscous fluids in a classical system of agitation: a cylindrical tank with plate bottom without obstacles agitated by a gate impeller agitator. We are interested to the laminar, incompressible and flow. We devote to a numerical approach carried out using an industrial code CFD Fluent 6.3.26 based on the finite volumes method discretization of Navier - Stokes equations formulated in variables (U.V.P). The threshold of flow related to the viscoplastic behaviour is modelled by a theoretical law of Bingham. The results obtained are used to compare between the five configurations suggested in terme of power consumption. We study the influence of inertia by the variation of Reynolds number and generalized Reynolds number and the plasticity influence by the variation of Bingham number on the flow. The fields speed are analyzed, we note the existence of a threshold of flow characterized by the number of Hedstrom can lead to a quasi-immobilization of zones inside the system of agitation for all configurations suggested. (C) 2013 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:418 / 427
页数:10
相关论文
共 50 条
  • [1] The CFD modelling of transient non-Newtonian fluid flow in a Rushton turbine-stirred tank
    Peryt-Stawiarska, Sylwia
    Zakrzewska, Barbara
    Jaworski, Zdzislaw
    PRZEMYSL CHEMICZNY, 2011, 90 (09): : 1664 - 1666
  • [2] Investigation of impeller modification and eccentricity for non-Newtonian fluid mixing in stirred vessels
    Yavuz, N.
    Sandeep, K. P.
    CHEMICAL ENGINEERING COMMUNICATIONS, 2019, 206 (03) : 318 - 332
  • [3] Numerical Simulation of Laminar Flow and Heat Transfer of a Non-Newtonian Nanofluid in an Agitated Tank
    Mokhefi, Abderrahim
    Bouanini, Mohamed
    Elmir, Mohammed
    INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2021, 39 (01) : 251 - 261
  • [4] Laminar non-Newtonian fluid flow in noncircular ducts and microchannels
    Muzychka, Y. S.
    Edge, J.
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2008, 130 (11): : 1112011 - 1112017
  • [5] Energy efficiency in industrial mixing and cooling of Non-Newtonian fluid in a stirred tank reactor
    Baghli, Houda
    Benyettou, Mohamed
    Tchouar, Noureddine
    Merah, Abdelkrim
    Djafri, Mohammed
    TECHNOLOGIES AND MATERIALS FOR RENEWABLE ENERGY, ENVIRONMENT AND SUSTAINABILITY, 2018, 1968
  • [6] Gas-liquid mixing performance of a non-Newtonian fluid in a multiple-impeller agitated tank
    Shiue, Angus
    Hu, Qiang
    Ye, Yu-Jie
    Jeng, Jyh-Cheng
    Leggett, Graham
    JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2025, 100 (01) : 104 - 120
  • [7] Computational simulation of mixing flow of shear thinning non-Newtonian fluids with various impellers in a stirred tank
    Sossa-Echeverria, Jaime
    Taghipour, Fariborz
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2015, 93 : 66 - 78
  • [8] On Laminar Flow of Non-Newtonian Fluids in Porous Media
    Hassan E. Fayed
    Nadeem A. Sheikh
    Oleg Iliev
    Transport in Porous Media, 2016, 111 : 253 - 264
  • [9] On Laminar Flow of Non-Newtonian Fluids in Porous Media
    Fayed, Hassan E.
    Sheikh, Nadeem A.
    Iliev, Oleg
    TRANSPORT IN POROUS MEDIA, 2016, 111 (01) : 253 - 264
  • [10] Non-Newtonian fluid flow from bottom of tank using orifices of different shapes
    Khahledi, Morakane
    Haldenwang, Rainer
    Chhabra, Raj
    Fester, Veruscha
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2020, 157 : 34 - 45