Literature DB >> 5056964

Viscoelasticity of human blood.

G B Thurston.   

Abstract

Measurements made for oscillatory flow of blood in circular tubes show that blood possesses elastic properties which make consideration of its viscous properties alone inadequate. Results are for a frequency of 10 Hz while varying the amplitude of the velocity gradient for red blood cells in plasma at concentrations ranging from 0 to 100% apparent hematocrit. For velocity gradients less than 1-2 sec(-1) both the viscous and elastic components of the shearing stress are linearly related to the gradient. For hematocrits above 20% the elastic component of the complex coefficient of viscosity increases with hematocrit approximately to the third power while the viscous component increases exponentially. Oscillatory flow measurements at very low hematocrits, when extrapolated to zero cell concentration, give the intrinsic viscosity of the average individual isolated red cell. The viscous part of this is found to be 1.7 which is compared with theoretical values from the rigid ellipsoid model for which the minimum possible value is 2.5. This difference is attributed to cell deformability. With increasing velocity gradient nonlinear properties develop. The viscous component of the complex viscosity becomes of the order of the steady flow viscosity at high gradients while the elastic component tends to decrease in inverse proportion to the gradient. Thus, the elastic component of the oscillatory stress tends to saturate, this tendency appearing at the approximate level of the yield stress.

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Year:  1972        PMID: 5056964      PMCID: PMC1484135          DOI: 10.1016/S0006-3495(72)86156-3

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  17 in total

1.  Rheology of human blood, near and at zero flow. Effects of temperature and hematocrit level.

Authors:  E W MERRILL; E R GILLILAND; G COKELET; H SHIN; A BRITTEN; R E WELLS
Journal:  Biophys J       Date:  1963-05       Impact factor: 4.033

2.  An equation for the flow of blood, plasma and serum through glass capillaries.

Authors:  G W BLAIR
Journal:  Nature       Date:  1959-02-28       Impact factor: 49.962

3.  Non-Newtonian behavior of blood in oscillatory flow.

Authors:  A L Kunz; N A Coulter
Journal:  Biophys J       Date:  2008-12-31       Impact factor: 4.033

4.  Blood viscosity: influence of erythrocyte aggregation.

Authors:  S Chien; S Usami; R J Dellenback; M I Gregersen; L B Nanninga; M M Guest
Journal:  Science       Date:  1967-08-18       Impact factor: 47.728

Review 5.  Rheology of blood.

Authors:  E W Errill
Journal:  Physiol Rev       Date:  1969-10       Impact factor: 37.312

6.  Interactions among erythrocytes under shear.

Authors:  D E Brooks; J W Goodwin; G V Seaman
Journal:  J Appl Physiol       Date:  1970-02       Impact factor: 3.531

7.  Microscopy and viscometry of blood flowing under uniform shear rate (rheoscopy).

Authors:  H Schmid-Schoenbein; R Wells; R Schildkraut
Journal:  J Appl Physiol       Date:  1969-05       Impact factor: 3.531

8.  Pressure-flow relations of human blood in hollow fibers at low flow rates.

Authors:  E W Merrill; A M Benis; E R Gilliland; T K Sherwood; E W Salzman
Journal:  J Appl Physiol       Date:  1965-09       Impact factor: 3.531

9.  Effect of dextran on rheology of human blood: low shear viscometery.

Authors:  H J Meiselman; E W Merrill; E W Salzman; E R Gilliland; G A Pelletier
Journal:  J Appl Physiol       Date:  1967-03       Impact factor: 3.531

10.  Static method for determining blood yield stress.

Authors:  S E Charm; G S Kurland
Journal:  Nature       Date:  1967-12-16       Impact factor: 49.962

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  27 in total

Review 1.  The use of computational fluid dynamics in the development of ventricular assist devices.

Authors:  Katharine H Fraser; M Ertan Taskin; Bartley P Griffith; Zhongjun J Wu
Journal:  Med Eng Phys       Date:  2010-11-13       Impact factor: 2.242

2.  Effect of a diet rich in linseed oil on complex viscosity and blood pressure in spontaneously hypertensive rats (SHR).

Authors:  B Dierberger; M Schäch; I Anadere; M Brändle; R Jacob
Journal:  Basic Res Cardiol       Date:  1991 Nov-Dec       Impact factor: 17.165

3.  Hemodynamics in a Pediatric Ascending Aorta Using a Viscoelastic Pediatric Blood Model.

Authors:  Bryan C Good; Steven Deutsch; Keefe B Manning
Journal:  Ann Biomed Eng       Date:  2015-07-10       Impact factor: 3.934

4.  Extensional flow of blood analog solutions in microfluidic devices.

Authors:  P C Sousa; F T Pinho; M S N Oliveira; M A Alves
Journal:  Biomicrofluidics       Date:  2011-03-17       Impact factor: 2.800

5.  Dynamics of blood flow: modeling of Fåhraeus and Fåhraeus-Lindqvist effects using a shear-induced red blood cell migration model.

Authors:  Rachid Chebbi
Journal:  J Biol Phys       Date:  2018-09-15       Impact factor: 1.365

6.  Predicting human blood viscosity in silico.

Authors:  Dmitry A Fedosov; Wenxiao Pan; Bruce Caswell; Gerhard Gompper; George E Karniadakis
Journal:  Proc Natl Acad Sci U S A       Date:  2011-07-05       Impact factor: 11.205

7.  A non-linear fluid suspension model for blood flow.

Authors:  Wei-Tao Wu; Nadine Aubry; James F Antaki; Mehrdad Massoudi
Journal:  Int J Non Linear Mech       Date:  2018-11-09       Impact factor: 2.985

8.  Structural and functional evidence for the scaffolding effect of alveolar blood vessels.

Authors:  Barry C Gibney; Willi L Wagner; Alexandra B Ysasi; Janeil M Belle; Akira Tsuda; Maximilian Ackermann; Steven J Mentzer
Journal:  Exp Lung Res       Date:  2017-12-05       Impact factor: 2.459

9.  A new method for measuring the yield stress in thin layers of sedimenting blood.

Authors:  C L Morris; C M Smith; P L Blackshear
Journal:  Biophys J       Date:  1987-08       Impact factor: 4.033

10.  Modeling and numerical simulation of blood flow using the Theory of Interacting Continua.

Authors:  Mehrdad Massoudi; Jeongho Kim; James F Antaki
Journal:  Int J Non Linear Mech       Date:  2011-09-22       Impact factor: 2.985

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