Transport and deposition of ellipsoidal fibers in low Reynolds number flows

被引:62
|
作者
Tian, Lin [1 ]
Ahmadi, Goodarz [1 ]
Wang, Zuocheng [2 ]
Hopke, Philip K. [2 ]
机构
[1] Clarkson Univ, Dept Mech & Aeronaut Engn, Potsdam, NY 13699 USA
[2] Clarkson Univ, Dept Chem Engn, Potsdam, NY 13699 USA
关键词
Ellipsoidal particle; Fiber transport; Fiber deposition; Sedimentation; Laminar flow; PARTICLES; AIRWAY; MOTION;
D O I
10.1016/j.jaerosci.2011.09.001
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The motion of elongated, ellipsoidal fibers in low Reynolds number flows was studied using a computational modeling approach. The computer model resolved the coupled translational and rotational motion of fibers in laminar flows. The computational model was applied in a circular duct and the transport and deposition of ellipsoidal fibers with different sizes and aspect ratios were simulated. An experimental setup was also developed and deposition of glass fibers in a pipe flow in laminar flow regime was measured. A fiber classifier was used to generate fibers with different aspect ratios in controlled condition. The computational model predictions were compared with the experimental data and good agreement was observed. It was found that the flow shear rate, the fiber aspect ratio, and the particle-to-fluid density ratio significantly affect the transport and deposition of ellipsoidal fibers. It was also found that the computational model should account for the duct flow entrance region in order to provide physically realistic predictions. Attention was given to comparing the effectiveness of using equivalent spheres to approximate the elongated fibers. Several commonly used equivalent spheres were studied, and their suitability for characterizing motion of ellipsoidal fiber particles in the laminar flow was studied. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1 / 18
页数:18
相关论文
共 50 条
  • [31] Low Reynolds number turbulent flows over elastic walls
    Rosti, Marco E.
    Brandt, Luca
    PHYSICS OF FLUIDS, 2020, 32 (08)
  • [32] Calculation of three-dimensional low Reynolds number flows
    Cebeci, Tuncer, 1600, Publ by AIAA, Washington, DC, United States (31):
  • [33] HOT WIRE MEASUREMENTS IN LOW REYNOLDS NUMBER HYPERSONIC FLOWS
    DEWEY, CF
    ARS JOURNAL, 1961, 31 (12): : 1709 - 1718
  • [34] PERFORMANCE OF PROJECTION METHODS FOR LOW-REYNOLDS-NUMBER FLOWS
    Sousa, Fabricio S.
    Oishi, Cassio M.
    Buscaglia, Gustavo C.
    11TH WORLD CONGRESS ON COMPUTATIONAL MECHANICS; 5TH EUROPEAN CONFERENCE ON COMPUTATIONAL MECHANICS; 6TH EUROPEAN CONFERENCE ON COMPUTATIONAL FLUID DYNAMICS, VOLS V - VI, 2014, : 4950 - 4961
  • [35] Local and Global Stability of Airfoil Flows at Low Reynolds Number
    Jones, L. E.
    Sandberg, R. D.
    Sandham, N. D.
    SEVENTH IUTAM SYMPOSIUM ON LAMINAR-TURBULENT TRANSITION, 2010, 18 : 201 - +
  • [36] Numerical optimization of airfoils in. low Reynolds number flows
    Nelson, D.
    Journal of Aircraft, 2009, 46 (01): : 331 - 337
  • [37] A comparison of integral formulations for the analysis of low Reynolds number flows
    Ingber, MS
    Mammoli, AA
    ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 1999, 23 (04) : 307 - 315
  • [38] Low and high Reynolds number flows inside Taylor cones
    Barrero, A
    Gañán-Calvo, AM
    Dávila, J
    Palacio, A
    Gómez-González, E
    PHYSICAL REVIEW E, 1998, 58 (06): : 7309 - 7314
  • [39] Pulsatile developing channel flows in low Reynolds Number regime
    Shajari, G.
    Abbasi, M.
    Jamei, M. Khaki
    Journal of Computational and Applied Research in Mechanical Engineering, 2022, 12 (02): : 237 - 245
  • [40] Low Reynolds number flows in a microscopic and tapered tube with a permeability
    Egashira, R.
    Fujikawa, T.
    Yaguchi, H.
    Fujikawa, S.
    FLUID DYNAMICS RESEARCH, 2019, 51 (02)