Fåhræus Effect
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The Fåhræus effect is the decrease in average concentration of
red blood cell Red blood cells (RBCs), also referred to as red cells, red blood corpuscles (in humans or other animals not having nucleus in red blood cells), haematids, erythroid cells or erythrocytes (from Greek ''erythros'' for "red" and ''kytos'' for "holl ...
s in
human blood Blood is a body fluid in the circulatory system of humans and other vertebrates that delivers necessary substances such as nutrients and oxygen to the cells, and transports metabolic waste products away from those same cells. Blood in the c ...
as the diameter of the glass tube in which it is flowing decreases. In other words, in
blood vessel The blood vessels are the components of the circulatory system that transport blood throughout the human body. These vessels transport blood cells, nutrients, and oxygen to the tissues of the body. They also take waste and carbon dioxide away ...
s with diameters less than 500
micrometers The micrometre ( international spelling as used by the International Bureau of Weights and Measures; SI symbol: μm) or micrometer (American spelling), also commonly known as a micron, is a unit of length in the International System of Unit ...
, the
hematocrit The hematocrit () (Ht or HCT), also known by several other names, is the volume percentage (vol%) of red blood cells (RBCs) in blood, measured as part of a blood test. The measurement depends on the number and size of red blood cells. It is norm ...
decreases with decreasing
capillary A capillary is a small blood vessel from 5 to 10 micrometres (μm) in diameter. Capillaries are composed of only the tunica intima, consisting of a thin wall of simple squamous endothelial cells. They are the smallest blood vessels in the bod ...
diameter. The Fåhræus effect definitely influences the
Fåhræus–Lindqvist effect The Fåhraeus–Lindqvist effect describes how the viscosity of a fluid, in this case blood, changes with the diameter of the tube it travels through. In particular there is a 'decrease in viscosity as the tube's diameter ''decreases (although on ...
, which describes the dependence of
apparent viscosity In fluid mechanics, apparent viscosity (sometimes denoted ) is the shear stress applied to a fluid divided by the shear rate: :\eta = \frac For a Newtonian fluid, the apparent viscosity is constant, and equal to the Newtonian viscosity of ...
of blood on the capillary size, but the former is not the only cause of the latter.


History

Robin Fåhræus Robert (Robin) Sanno Fåhræus, born 15 October 1888 in Stockholm, died 18 September 1968 in Lund, was a Swedish medical researcher noted for his contributions to hemorheology. Biography Fåhræus was the son of art historian Klas Fåhraeus a ...
was a pathologist at the
University of Uppsala Uppsala University ( sv, Uppsala universitet) is a public research university in Uppsala, Sweden. Founded in 1477, it is the oldest university in Sweden and the Nordic countries still in operation. The university rose to significance during ...
in Sweden, and his interest in the suspension stability of blood and later in
hemorheology Hemorheology, also spelled haemorheology (from Greek ‘αἷμα, ''haima'' 'blood' and rheology, from Greek ῥέω ''rhéō'', 'flow' and -λoγία, ''-logia'' 'study of'), or blood rheology, is the study of flow properties of blood and its ...
was motivated by the desire to understand the clinical effects of abnormalities in the aggregation and flow behavior of the formed elements. The aim was to ascertain whether blood obeyed the law of Poiseuille (
Hagen–Poiseuille equation In nonideal fluid dynamics, the Hagen–Poiseuille equation, also known as the Hagen–Poiseuille law, Poiseuille law or Poiseuille equation, is a physical law that gives the pressure drop in an incompressible and Newtonian fluid in laminar fl ...
). It was Hess in 1915 who proved that blood obeys the poiseuille law at high flow and low shear. The
non-Newtonian A non-Newtonian fluid is a fluid that does not follow Newton's law of viscosity, i.e., constant viscosity independent of stress. In non-Newtonian fluids, viscosity can change when under force to either more liquid or more solid. Ketchup, for exa ...
effects were due to the elastic deformation of red blood cells. Fahraeus entered the scene in 1917 through his observation that sedimentation velocity of red corpuscles increases during pregnancy. He used the concept of buffy coat as the starting point of his work on red cell sedimentation and the more general problem of suspension stability of blood. He pointed out that fibrinogen was the principal protein involved in red cell aggregation leading to the formation of regular
rouleaux Rouleaux (singular is rouleau) are stacks or aggregations of red blood cells (RBCs) that form because of the unique discoid shape of the cells in vertebrates. The flat surface of the discoid RBCs gives them a large surface area to make contact wi ...
and that the process was quite distinct from blood coagulation. He applied colloid principles to describe the stability of the suspension and more relevant to modern circulatory psychology was the study of aggregation of streaming blood and the relation between blood cell distribution, its velocity and
apparent viscosity In fluid mechanics, apparent viscosity (sometimes denoted ) is the shear stress applied to a fluid divided by the shear rate: :\eta = \frac For a Newtonian fluid, the apparent viscosity is constant, and equal to the Newtonian viscosity of ...
. He concluded the following results: (a) In high flow rates in tubes of diameter (< 0.3 mm) the concentration of red cells is lower than large feed tube, the reason being that, red cells are distributed in the axial core and their mean velocity is therefore more than the mean velocity of blood. There is an inverse relationship between tube hematocrit and mean velocity of blood. (b) Viscosity in smaller tubes of < 0.3 mm is lower than that of large tube and decreases with decreasing diameter. (c) The migration of blood cells from the tube wall to the axis depends on the particle size and not on the particle density. (d) At low flow rates, the red cells aggregate into rouleaux and these being the largest particles in the suspension migrate to the axis forming a core that displaces the white cells to periphery. Therefore, the concentration of white cells will be greater than that of feed tube and their mean velocity will be lower than that of red cells and the plasma.


Mathematical model

Considering steady
laminar Laminar means "flat". Laminar may refer to: Terms in science and engineering: * Laminar electronics or organic electronics, a branch of material sciences dealing with electrically conductive polymers and small molecules * Laminar armour or "band ...
fully developed
blood flow Hemodynamics or haemodynamics are the dynamics of blood flow. The circulatory system is controlled by homeostatic mechanisms of autoregulation, just as hydraulic circuits are controlled by control systems. The hemodynamic response continuously m ...
in a small tube with radius of r_0, whole blood separates into a cell-free plasma layer along the tube wall and enriched central core. As a result, the tube
hematocrit The hematocrit () (Ht or HCT), also known by several other names, is the volume percentage (vol%) of red blood cells (RBCs) in blood, measured as part of a blood test. The measurement depends on the number and size of red blood cells. It is norm ...
H_t is smaller than the out flow hematocrit H_0. A simple mathematical treatment of the Fåhræus effect was shown in Sutera et al. (1970). This seems to be the earliest analysis: : \frac=\frac where: :H_t is the tube hematocrit :H_0 is the outlet hematocrit :\delta is the cell-free plasma layer thickness :r_0 is the radius of the tube Also, the following expression was developed by Pries et al. (1990) to represent tube hematocrit,H_t, as a function of discharge
hematocrit The hematocrit () (Ht or HCT), also known by several other names, is the volume percentage (vol%) of red blood cells (RBCs) in blood, measured as part of a blood test. The measurement depends on the number and size of red blood cells. It is norm ...
,H_d, and tube diameter. : \frac= H_d+(1-H_d)(1+1.7 exp (-0.415 D)-0.6exp(-0.011D)) where: :H_t is the tube hematocrit :H_d is the discharge hematocrit :D is the diameter of the tube in µm


See also

* Cell-free marginal layer model *
Fåhræus–Lindqvist effect The Fåhraeus–Lindqvist effect describes how the viscosity of a fluid, in this case blood, changes with the diameter of the tube it travels through. In particular there is a 'decrease in viscosity as the tube's diameter ''decreases (although on ...
*
Hemodynamics Hemodynamics or haemodynamics are the dynamics of blood flow. The circulatory system is controlled by homeostatic mechanisms of autoregulation, just as hydraulic circuits are controlled by control systems. The hemodynamic response continuously m ...
*
Hemorheology Hemorheology, also spelled haemorheology (from Greek ‘αἷμα, ''haima'' 'blood' and rheology, from Greek ῥέω ''rhéō'', 'flow' and -λoγία, ''-logia'' 'study of'), or blood rheology, is the study of flow properties of blood and its ...


References


Further reading

* C. Kleinstreuer, (2007) Bio-Fluid Dynamics, Taylor and Francis Pub. {{DEFAULTSORT:Fahraeus Effect Cardiovascular physiology Robin Fåhræus