Dynamical clustering of red blood cells in capillary vessels

被引:98
作者
Boryczko, K
Dzwinel, W
Yuen, DA [1 ]
机构
[1] Univ Minnesota, Minnesota Supercomp Inst, Minneapolis, MN 55455 USA
[2] AGH Univ Sci & Technol, PL-30059 Krakow, Poland
关键词
blood flow; capillaries; clustering; discrete-particle model; fluid-particle model; computer simulation;
D O I
10.1007/s00894-002-0105-x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We have modeled the dynamics of a 3-D system consisting of red blood cells (RBCs), plasma and capillary walls using a discrete-particle approach. The blood cells and capillary walls are composed of a mesh of particles interacting with harmonic forces between nearest neighbors. We employ classical mechanics to mimic the elastic properties of RBCs with a biconcave disk composed of a mesh of spring-like particles. The fluid particle method allows for modeling the plasma as a particle ensemble, where each particle represents a collective unit of fluid, which is defined by its mass, moment of inertia, translational and angular momenta. Realistic behavior of blood cells is modeled by considering RBCs and plasma flowing through capillaries of various shapes. Three types of vessels are employed: a pipe with a choking point, a curved vessel and bifurcating capillaries. There is a strong tendency to produce RBC clusters in capillaries. The choking points and other irregularities in geometry influence both the flow and RBC shapes, considerably increasing the clotting effect. We also discuss other clotting factors coming from the physical properties of blood, such as the viscosity of the plasma and the elasticity of the RBCs. Modeling has been carried out with adequate resolution by using 1 to 10 million particles. Discrete particle simulations open a new pathway for modeling the dynamics of complex, viscoelastic fluids at the microscale, where both liquid and solid phases are treated with discrete particles.
引用
收藏
页码:16 / 33
页数:18
相关论文
共 54 条
  • [1] SHEAR-INDUCED RESUSPENSION IN A COUETTE DEVICE
    ACRIVOS, A
    MAURI, R
    FAN, X
    [J]. INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 1993, 19 (05) : 797 - 802
  • [2] *AM, AM V 2 3 ADV 3D VIS
  • [3] ANGENBAUM JM, 1985, J COMPUT PHYS, V14, P177
  • [4] [Anonymous], PHYS REV E
  • [5] Parallel implementation of the fluid particle model for simulating complex fluids in the mesoscale
    Boryczko, K
    Dzwinel, W
    Yuen, DA
    [J]. CONCURRENCY AND COMPUTATION-PRACTICE & EXPERIENCE, 2002, 14 (02) : 137 - 161
  • [6] Hemodynamics in the carotid artery bifurcation: a comparison between numerical simulations and in vitro MRI measurements
    Botnar, R
    Rappitsch, G
    Scheidegger, MB
    Liepsch, D
    Perktold, K
    Boesiger, P
    [J]. JOURNAL OF BIOMECHANICS, 2000, 33 (02) : 137 - 144
  • [7] Chopard B., 1998, Cellular Automata Modeling of Physical Systems
  • [8] Mesoscopic simulation of drops in gravitational and shear fields
    Clark, AT
    Lal, M
    Ruddock, JN
    Warren, PB
    [J]. LANGMUIR, 2000, 16 (15) : 6342 - 6350
  • [9] Computer simulations of domain growth and phase separation in two-dimensional binary immiscible fluids using dissipative particle dynamics
    Coveney, PV
    Novik, KE
    [J]. PHYSICAL REVIEW E, 1996, 54 (05) : 5134 - 5141
  • [10] De Groot SR., 1962, NONEQUILIBRIUM THERM