NONSYMMETRIC BRANCHING OF FLUID FLOWS IN 3D VESSELS

被引:0
|
作者
Ovenden, N. C. [1 ]
Smith, F. T. [1 ]
机构
[1] UCL, Dept Math, Gower St, London WC1E 6BT, England
来源
ANZIAM JOURNAL | 2018年 / 59卷 / 04期
基金
英国工程与自然科学研究理事会;
关键词
branching; nonsymmetry; LATTICE-BOLTZMANN METHOD; ARTERIOVENOUS-MALFORMATIONS; BLOOD-FLOW; NUMERICAL-SIMULATION; CAROTID-ARTERY; SIDE BRANCH; TUBE FLOWS; AIR-FLOW; NETWORK; MODEL;
D O I
10.1017/S144618111800010X
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
Nonsymmetric branching flow through a three-dimensional (3D) vessel is considered at medium-to-high flow rates. The branching is from one mother vessel to two or more daughter vessels downstream, with laminar steady or unsteady conditions assumed. The inherent 3D nonsymmetry is due to the branching shapes themselves, or the differences in the end pressures in the daughter vessels, or the incident velocity profiles in the mother. Computations based on lattice-Boltzmann methodology are described first. A subsequent analysis focuses on small 3D disturbances and increased Reynolds numbers. This reduces the 3D problem to a two-dimensional one at the outer wall in all pressure-driven cases. As well as having broader implications for feeding into a network of vessels, the findings enable predictions of how much swirling motion in the cross-plane is generated in a daughter vessel downstream of a 3D branch junction, and the significant alterations provoked locally in the shear stresses and pressures at the walls. Nonuniform incident wall-shear and unsteady effects are examined. A universal asymptotic form is found for the flux change into each daughter vessel in a 3D branching of arbitrary cross-section with a thin divider.
引用
收藏
页码:533 / 561
页数:29
相关论文
共 50 条
  • [11] 3D microvascular analysis reveals irregularly branching blood vessels in the hyperpigmented skin of solar lentigo
    Shibata, Takako
    Kajiya, Kentaro
    Sato, Kiyoshi
    Yoon, Jisun
    Kang, Hee Young
    PIGMENT CELL & MELANOMA RESEARCH, 2018, 31 (06) : 725 - 727
  • [12] Remarks on the regularity criterion of the 3D micropolar fluid flows in terms of the pressure
    Jia, Yan
    Zhang, Wenliang
    Dong, Bo-Qing
    APPLIED MATHEMATICS LETTERS, 2011, 24 (02) : 199 - 203
  • [13] A NUMERICAL METHOD FOR THE SIMULATION OF FREE SURFACE FLOWS OF VISCOPLASTIC FLUID IN 3D
    Nikitin, Kirill D.
    Olshanskii, Maxim A.
    Terekhov, Kirill M.
    Vassilevski, Yuri V.
    JOURNAL OF COMPUTATIONAL MATHEMATICS, 2011, 29 (06) : 605 - 622
  • [14] A 3D Moment of Fluid method for simulating complex turbulent multiphase flows
    Mukundan, Anirudh Asuri
    Menard, Thibaut
    Brandle de Motta, Jorge Cesar
    Berlemont, Alain
    COMPUTERS & FLUIDS, 2020, 198 (198)
  • [15] Mixing simulations: Tracking strongly deforming fluid volumes in 3D flows
    Galaktionov, AS
    Anderson, PD
    Peters, GWM
    RECENT ADVANCES IN PARALLEL VIRTUAL MACHINE AND MESSAGE PASSING INTERFACE, 1997, 1332 : 463 - 469
  • [16] Model of vessels for 3D reconstruction
    León, LA
    Rodríguez, KB
    Hernández, CC
    Monreal, JE
    Pérez, JS
    METMBS'03: PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON MATHEMATICS AND ENGINEERING TECHNIQUES IN MEDICINE AND BIOLOGICAL SCIENCES, 2003, : 410 - 416
  • [17] 3D Reconstruction of blood vessels
    Ali Al Moussawi
    Cedric Galusinski
    Christian Nguyen
    Engineering with Computers, 2015, 31 : 775 - 790
  • [18] 3D Printed Blood Vessels
    Cook, A. D.
    Dodge, C.
    Day, D.
    Griggs, J.
    TISSUE ENGINEERING PART A, 2014, 20 : S122 - S122
  • [19] 3D Reconstruction of blood vessels
    Al Moussawi, Ali
    Galusinski, Cedric
    Nguyen, Christian
    ENGINEERING WITH COMPUTERS, 2015, 31 (04) : 775 - 790
  • [20] 3D modeling of flow in vessels
    Khaustov, AI
    Tolpekin, VE
    Gavrilyuk, VN
    Korotkevich, PN
    DOKLADY AKADEMII NAUK, 1998, 358 (06) : 774 - 777