CFD simulation of drag-reducing fluids in a non-Newtonian turbulent pipe flow

被引:9
|
作者
Niazi, Mohammad [1 ]
Ashrafizadeh, Seyed Nezameddin [1 ]
Hashemabadi, Seyed Hassan [2 ]
Karami, Hamidreza [3 ]
机构
[1] Iran Univ Sci & Technol, Dept Chem Engn, Res Lab Adv Separat Proc, Tehran 1684613114, Iran
[2] Iran Univ Sci & Technol, Computat Fluid Dynam Res Lab, Dept Chem Engn, Tehran 1684613114, Iran
[3] Modalal Ind Grp, Qual Control Dept, Kermanshah, Iran
基金
美国国家科学基金会;
关键词
Pipeline Transportation; Drag Reduction Agents; Turbulent Flow; CFD Simulation; REDUCTION; MODEL; PREDICTIONS; POLYMER;
D O I
10.1016/j.ces.2023.119612
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The conveyance of fluids from one terminal to another incurs considerable expenses primarily due to the significant costs associated with addressing pressure losses arising from shear stresses and friction along the inner surface during the pumping operations within pipelines. This study was conducted with the objective of simulating turbulent flow in pipes containing drag-reducing fluids. This was achieved through the utilization of both RKE and RNG versions of a non-Newtonian model for low Reynolds numbers, based on the k -epsilon model, along with a non-Newtonian damping function. The outcomes were subsequently compared to simulations carried out by Pinho and experimental data sourced from the existing literature. To simulate the flow in pipelines, computational fluid dynamics (CFD) software was employed, which incorporated non-linear molecular viscosity and a damping function to accurately account for near-wall effects. In addition, this research entailed the optimization of C and C0 parameters in the damping function and the stress term, which quantifies the cross -correlation between fluctuating viscosity and the fluctuating rate of strain. Furthermore, non-Newtonian terms were incorporated into the equations for turbulent kinetic energy (k), dissipation rate (epsilon), and momentum transfer. The study involved a comprehensive comparison of model predictions with experimental data across various flow parameters, including friction factor, axial velocity, turbulent kinetic energy, and Reynolds shear stresses. The results revealed a significant enhancement in the model's ability to predict critical flow parameters, such as friction factor, mean axial velocity, and Reynolds stress profiles. Nevertheless, the model displayed some limitations in predicting turbulent kinetic energy. Notably, the average error in calculating the friction factor for the fluids under investigation was found to be 5.45%, marking a substantial improvement compared to the Pinho model, which exhibited an average error of 32.49%.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Correction of Stokes drag for non-Newtonian flow through pack of spheres
    Fischer, Nikolas
    Becker, Thomas
    Fattahi, Ehsan
    COMPUTERS & FLUIDS, 2023, 259
  • [32] A Simplified Method for Calculating Heat Transfer Coefficients and Friction Factors in Laminar Pipe Flow of Non-Newtonian Fluids
    Cruz, D. A.
    Coelho, P. M.
    Alves, M. A.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2012, 134 (09):
  • [33] PLIF Measurement of Turbulent Diffusion in Drag-Reducing Flow with Dosed Polymer Solution from a Wall
    Motozawa, Masaaki
    Kurosawa, Taiki
    Otsuki, Tomohiro
    Iwamoto, Kaoru
    Ando, Hirotomo
    Senda, Tetsuya
    Kawaguchi, Yasuo
    JOURNAL OF THERMAL SCIENCE AND TECHNOLOGY, 2012, 7 (01): : 272 - 287
  • [34] Plane flow model of non-Newtonian turbulent stratified flow in wells and pipes
    Li, HB
    Wu, C
    Zheng, YG
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2004, 44 (3-4) : 223 - 229
  • [35] Simulation and experimental study on polishing of spherical steel by non-Newtonian fluids
    Duc-nam Nguyen
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2020, 107 (1-2) : 763 - 773
  • [36] Non-Newtonian Properties of Relativistic Fluids
    Koide, Tomoi
    IV MEXICAN MEETING ON MATHEMATICAL AND EXPERIMENTAL PHYSICS: RELATIVISTIC FLUIDS AND BIOLOGICAL PHYSICS, 2010, 1312 : 27 - 38
  • [37] Maximizing Energetic Efficiency in Flow Batteries Utilizing Non-Newtonian Fluids
    Smith, Kyle C.
    Chiang, Yet-Ming
    Carter, W. Craig
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2014, 161 (04) : A486 - A496
  • [38] Effect of drag-reducing polymer on blood flow in microchannels
    Li, Guanjie
    Sun, Yang
    Zheng, Xu
    Choi, Hyoung Jin
    Zhang, Ke
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2022, 209
  • [39] An Explicit and Continuously Differentiable Flow Equation for Non-Newtonian Fluids in Pipes
    Gjerstad, Kristian
    Ydstie, B. Erik
    Time, Rune W.
    Bjorkevoll, Knut S.
    SPE JOURNAL, 2014, 19 (01): : 78 - 87
  • [40] A turbulent duct flow investigation of drag-reducing viscoelastic FENE-P fluids based on different low-Reynolds-number models
    Rasti, Ehsan
    Talebi, Farhad
    Mazaheri, Kiumars
    PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2019, 526