메뉴 건너뛰기




Volumn 35, Issue 1, 1998, Pages 69-87

Effect of nonaxisymmetric hematocrit distribution on non-Newtonian blood flow in small tubes

Author keywords

Casson model; Mathematical model; Nonaxisymmetric hematocrit distribution; Quemada model; Red cell aggregation

Indexed keywords

ARTICLE; BLOOD FLOW; BLOOD VISCOSITY; CAT; ERYTHROCYTE AGGREGATION; HEMATOCRIT; HUMAN; MATHEMATICAL MODEL; MICROCIRCULATION; NONHUMAN; SHEAR RATE;

EID: 0031874272     PISSN: 0006355X     EISSN: None     Source Type: Journal    
DOI: 10.1016/S0006-355X(98)00018-3     Document Type: Article
Times cited : (47)

References (22)
  • 1
    • 33750851898 scopus 로고    scopus 로고
    • Contribution of red blood cell aggregation to venous vascular resistance in skeletal muscle
    • Cabel M, Meiselman HJ, Popel AS, Johnson PC. Contribution of red blood cell aggregation to venous vascular resistance in skeletal muscle. American Journal of Physiology, 1997;272:H1020-H1032.
    • (1997) American Journal of Physiology , vol.272
    • Cabel, M.1    Meiselman, H.J.2    Popel, A.S.3    Johnson, P.C.4
  • 2
    • 0002654757 scopus 로고
    • Macroscopic rheology and tube flow of human blood
    • Grayson J, Zingg W, Eds., New York: Plenum
    • Cokelet GR. Macroscopic rheology and tube flow of human blood. In: Microcirculation. Volume 1. Grayson J, Zingg W, Eds., New York: Plenum; 1976. pp. 9-31.
    • (1976) Microcirculation , vol.1 , pp. 9-31
    • Cokelet, G.R.1
  • 3
    • 0003046746 scopus 로고
    • The rheology and tube flow of blood
    • Skalak R, Chien S, Eds., New York: McGraw Hill
    • Cokelet GR. The rheology and tube flow of blood. In: Handbook of Bioengineering. Skalak R, Chien S, Eds., New York: McGraw Hill; 1987. pp. 14.1-14.17.
    • (1987) Handbook of Bioengineering , pp. 141-1417
    • Cokelet, G.R.1
  • 4
    • 0026098613 scopus 로고
    • Decreased hydrodynamic resistance in the two-phase flow of blood through small vertical tubes at low flow rates
    • Cokelet GR, Goldsmith HL. Decreased hydrodynamic resistance in the two-phase flow of blood through small vertical tubes at low flow rates. Circulation Research, 1991;68:1-17.
    • (1991) Circulation Research , vol.68 , pp. 1-17
    • Cokelet, G.R.1    Goldsmith, H.L.2
  • 5
    • 0031035940 scopus 로고    scopus 로고
    • Stratified multiphase model for blood flow in a venular bifurcation
    • Das B, Enden G, Popel AS. Stratified multiphase model for blood flow in a venular bifurcation. Annals of Biomedical Engineering, 1997;25:135-153.
    • (1997) Annals of Biomedical Engineering , vol.25 , pp. 135-153
    • Das, B.1    Enden, G.2    Popel, A.S.3
  • 6
    • 0023008788 scopus 로고
    • Evaluation of photometric methods for quantifying convective mass transport in microvessels
    • Ellsworth ML, Pittman RN. Evaluation of photometric methods for quantifying convective mass transport in microvessels. American Journal of Physiology, 1986;251:H869-H879.
    • (1986) American Journal of Physiology , vol.251
    • Ellsworth, M.L.1    Pittman, R.N.2
  • 7
    • 0022506160 scopus 로고
    • Diameter and blood flow of skeletal muscle venules during local flow regulation
    • House SD, Johnson PC. Diameter and blood flow of skeletal muscle venules during local flow regulation. American Journal of Physiology, 1986;250:H828-H837.
    • (1986) American Journal of Physiology , vol.250
    • House, S.D.1    Johnson, P.C.2
  • 8
    • 7344241353 scopus 로고
    • Modeling hemodynamics in small tubes (hollow fibers) considering non-Newtonian blood properties and radial hematocrit distribution
    • Mosora F, et al., Eds., New York: Plenum
    • Lerche D. Modeling hemodynamics in small tubes (hollow fibers) considering non-Newtonian blood properties and radial hematocrit distribution. In: Biomechanical Transport Processes. Mosora F, et al., Eds., New York: Plenum; 1990. pp. 243-250.
    • (1990) Biomechanical Transport Processes , pp. 243-250
    • Lerche, D.1
  • 10
    • 0018976258 scopus 로고
    • In vivo measurements of "apparent viscosity" and microvessel hematocrit in the mesentery of the cat
    • Lipowsky HH, Usami S, Chien S. In vivo measurements of "apparent viscosity" and microvessel hematocrit in the mesentery of the cat. Microvascular Research, 1980;19:297-319.
    • (1980) Microvascular Research , vol.19 , pp. 297-319
    • Lipowsky, H.H.1    Usami, S.2    Chien, S.3
  • 11
    • 0008319105 scopus 로고
    • The Casson equation and rheology of blood near zero shear
    • Copley A, Ed., New York: Interscience
    • Merrill EW, Margetts WG, Cokelet GR, Gilliland EW. The Casson equation and rheology of blood near zero shear. In: Symposium on Biorheology. Copley A, Ed., New York: Interscience; 1963. pp. 135-143.
    • (1963) Symposium on Biorheology , pp. 135-143
    • Merrill, E.W.1    Margetts, W.G.2    Cokelet, G.R.3    Gilliland, E.W.4
  • 12
    • 0027984751 scopus 로고
    • Theoretical analysis of flow properties of aggregating red cell suspensions in narrow horizontal tubes
    • Murata T. Theoretical analysis of flow properties of aggregating red cell suspensions in narrow horizontal tubes. Clinical Hemorheology, 1994;14:519-530.
    • (1994) Clinical Hemorheology , vol.14 , pp. 519-530
    • Murata, T.1
  • 13
    • 0029790792 scopus 로고    scopus 로고
    • Effects of sedimentation of small red blood cell aggregates on blood flow in narrow horizontal tubes
    • Murata T. Effects of sedimentation of small red blood cell aggregates on blood flow in narrow horizontal tubes. Biorheology. 1996;33:267-283.
    • (1996) Biorheology , vol.33 , pp. 267-283
    • Murata, T.1
  • 14
    • 0037889463 scopus 로고
    • Analytical solution for steady flow of Quemada fluid in a circular tube
    • Popel AS, Enden G. Analytical solution for steady flow of Quemada fluid in a circular tube. Rheol. Acta, 1993;32:422-426.
    • (1993) Rheol. Acta , vol.32 , pp. 422-426
    • Popel, A.S.1    Enden, G.2
  • 15
    • 0019470624 scopus 로고
    • Model studies on phase separation at a capillary orifice
    • Pries AR, Albrecht KH, Gaehtgens P. Model studies on phase separation at a capillary orifice. Biorheology, 1981;18:355-367.
    • (1981) Biorheology , vol.18 , pp. 355-367
    • Pries, A.R.1    Albrecht, K.H.2    Gaehtgens, P.3
  • 16
    • 0004972462 scopus 로고
    • Blood rheology and its implications in flow of blood
    • Rodkiewicz CM, Ed., New York: Springer-Verlag
    • Quemada D. Blood rheology and its implications in flow of blood. In: Arteries and Arterial Blood Flow: Biological and Physiological Aspects. Rodkiewicz CM, Ed., New York: Springer-Verlag; 1983. pp. 1-127.
    • (1983) Arteries and Arterial Blood Flow: Biological and Physiological Aspects , pp. 1-127
    • Quemada, D.1
  • 17
    • 0023622010 scopus 로고
    • Blood viscosity in small tubes: Effect of shear rate on aggregation and sedimentation
    • Reinke W, Gaehtgens P, Johnson PC. Blood viscosity in small tubes: Effect of shear rate on aggregation and sedimentation. American Journal of Physiology, 1987;253:H540-H547.
    • (1987) American Journal of Physiology , vol.253
    • Reinke, W.1    Gaehtgens, P.2    Johnson, P.C.3
  • 18
    • 0022552776 scopus 로고
    • Effect of shear rate variation on apparent viscosity of human blood in tubes of 29 to 94 μm diameter
    • Reinke W, Johnson PC, Gaehtgens P. Effect of shear rate variation on apparent viscosity of human blood in tubes of 29 to 94 μm diameter. Circulation Research, 1986;59:124-132.
    • (1986) Circulation Research , vol.59 , pp. 124-132
    • Reinke, W.1    Johnson, P.C.2    Gaehtgens, P.3
  • 19
    • 0023876734 scopus 로고
    • Fahreaeus-effect-reversal (FER) in compaction stasis (CS): Microrheological and haemodynamic consequences of intravascular sedimentation of red cell aggregates
    • Schmid-Schönbein H. Fahreaeus-effect-reversal (FER) in compaction stasis (CS): Microrheological and haemodynamic consequences of intravascular sedimentation of red cell aggregates. Biorheology, 1988;25:355-366.
    • (1988) Biorheology , vol.25 , pp. 355-366
    • Schmid-Schönbein, H.1
  • 20
    • 0028484020 scopus 로고
    • A model for motion and sedimentation of cylindrical red cell aggregation during slow blood flow in narrow horizontal tubes
    • Secomb T, El-Kareh. A model for motion and sedimentation of cylindrical red cell aggregation during slow blood flow in narrow horizontal tubes. Journal of Biomechanical Engineering, 1994;116:243-249.
    • (1994) Journal of Biomechanical Engineering , vol.116 , pp. 243-249
    • Secomb, T.1    El-Kareh2
  • 21
    • 0028504962 scopus 로고
    • Flow dynamics of erythrocytes in microvessels of isolated rabbit mesentery: Cell free layer and flow resistance
    • Tateishi N, Suzuki Y, Soutani M, Maeda N. Flow dynamics of erythrocytes in microvessels of isolated rabbit mesentery: Cell free layer and flow resistance. Journal of Biomechanics, 1994;27:1119-1125.
    • (1994) Journal of Biomechanics , vol.27 , pp. 1119-1125
    • Tateishi, N.1    Suzuki, Y.2    Soutani, M.3    Maeda, N.4
  • 22
    • 0026667844 scopus 로고
    • Cell-free layer in cerebral microvessels
    • Yamaguchi S, Yamakura T, Niimi H. Cell-free layer in cerebral microvessels. Biorheology, 1992;29:251-260.
    • (1992) Biorheology , vol.29 , pp. 251-260
    • Yamaguchi, S.1    Yamakura, T.2    Niimi, H.3


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.