Comparison of oscillatory flow conditions in Newtonian and non-Newtonian fluids using PIV and high-speed image analysis

被引:12
|
作者
Amaratunga, Maduranga [1 ]
Rabenjafimanantsoa, Herimonja A. [1 ]
Time, Rune W. [1 ]
机构
[1] Univ Stavanger, Dept Energy & Petr Engn, Stavanger, Norway
关键词
Critical Reynolds number; Frequency; Oscillating flow; Particle image velocimetry; Unsteady flow; Velocity amplitude; STATE-OF-ART; PIPE; TRANSITION; TURBULENCE; LAMINAR;
D O I
10.1016/j.flowmeasinst.2019.101628
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Oscillatory flow in pipelines is common in many industrial applications, including oil well drilling, An experimental investigation of oscillatory flow inside a vertical U-shaped circular pipe is presented in this paper to mimic the practical scenario takes place within a vertical oil well. Flow visualization was deployed to compare the velocity distributions in Newtonian (deionized water) arid non-Newtonian fluid (a mixture of three water based polymeric liquids). The experiments were performed in a 1.2m high, 50 mm diameter transparent test section, at room temperature (21 degrees C) and atmospheric pressure. Particle image velocimetry (My) technique was used to obtain non-invasive instantaneous flow velocity profiles. Based on local velocities, the streamwise (axial) velocity component within the pipe across its diameter was determined and the cross-sectional average velocity together with the normalized axial velocity were also calculated. In addition, high-speed motion pictures were used to determine the displacement of the air-liquid interface at the top of the U-tube limb. This enabled comparison of the flow field with the overall volumetric oscillating flow. A piston was driven at harmonic motion via a gas buffer, to provide the driving force for the test fluids at four different low frequencies ranging from 0.1 to 0.75 Hz. Oscillatory Reynolds number (Res) based on Stokes layer thickness was used as the criteria for determining the specific flow regime. According to the literature, the critical value for the oscillating Reynolds number was considered to be 500, and with this as reference all the experimental cases were within the laminar regime. Eight different experimental cases were tested within the ranges of (4 < Res < 116) and Womersley number (3 < Wo < 55). At higher frequencies, the viscous effects for the Newtonian fluid are confined to the Stokes layer and the central core of the velocity profile is plug-type. At the same time, higher frequencies resulted with increased velocity amplitudes. The viscous resistance of the non-Newtonian fluid and the presence of shear layer contribute to an uneven velocity profile across the pipe cross-section. Cross-sectional average velocity provides a more complete picture of the kinematic structure of oscillating flow and its dynamic distribution across the cross-section. Non-Newtonian fluid tends to achieve higher normalized axial velocities compared to that for Newtonian fluid, which is more or less equals to unity. The study was partly motivated by challenges associated with operational procedures during drilling and maintenance of petroleum wells. Furthermore, this study is also part of a comprehensive study aimed at investigating the influence of low frequency oscillations on particle settling in non-Newtonian drilling fluids.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] MICRO-PIV CHARACTERIZATION OF LAMINAR DEVELOPED FLOWS OF NEWTONIAN AND NON-NEWTONIAN FLUIDS IN A SLIT CHANNEL
    Completo, Carlos
    Geraldes, Vitor
    Semiao, Viriato
    EXPERIMENTAL FLUID MECHANICS 2010, 2010, : 87 - 97
  • [2] Comparison of the Single Bubble Ascent in a Newtonian and a Non-Newtonian Liquid: A Phenomenological PIV Study
    Boehm, Lutz
    Brehmer, Manuel
    Kraume, Matthias
    CHEMIE INGENIEUR TECHNIK, 2016, 88 (1-2) : 93 - 106
  • [3] Comparison of the jet breakup and droplet formation between non-Newtonian and Newtonian fluids
    Mousavi, Sepehr
    Siavashi, Majid
    Bagheri, Mehran
    JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2023, 321
  • [4] Flow of non-Newtonian fluids in pipes with large roughness
    Graham, Lachlan J. W.
    Pullum, Lionel
    Wu, Jie
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2016, 94 (06): : 1102 - 1107
  • [5] CFD modeling of turbulent flow for Non-Newtonian fluids in rough pipes
    Sorgun, Mehmet
    Ulker, Erman
    Uysal, Sila Ovgu Korkut
    Muftuoglu, Tevfik Denizhan
    OCEAN ENGINEERING, 2022, 247
  • [6] AXIAL FLOW OF SEVERAL NON-NEWTONIAN FLUIDS THROUGH A CIRCULAR CYLINDER
    Vieru, D.
    Siddique, I.
    INTERNATIONAL JOURNAL OF APPLIED MECHANICS, 2010, 2 (03) : 543 - 556
  • [7] A model to calculate the pressure loss of Newtonian and non-Newtonian fluids flow in coiled tubing operations
    Oliveira, Beatriz Rosas
    Leal, Barbara Cavalcante
    Pereira Filho, Leonidas
    de Oliveira Borges, Rodrigo Fernando
    Hora Paraiso, Eduardo da Cunha
    Magalhaes, Sergio da Cruz
    Rocha, Jose Marcelo
    Calcada, Luis Americo
    Scheid, Claudia Miriam
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2021, 204
  • [8] Transitional flow of non-Newtonian fluids in open channels of different cross-sectional shapes
    Kabwe, Christine
    Haldenwang, Rainer
    Fester, Veruscha
    Chhabra, Raj
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2017, 39 (06) : 2171 - 2189
  • [9] Transitional flow of non-Newtonian fluids in open channels of different cross-sectional shapes
    Christine Kabwe
    Rainer Haldenwang
    Veruscha Fester
    Raj Chhabra
    Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2017, 39 : 2171 - 2189
  • [10] Experimental studies on heat transfer to Newtonian and non-Newtonian fluids in helical coils with laminar and turbulent flow
    Pawar, S. S.
    Sunnapwar, Vivek K.
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2013, 44 : 792 - 804