Microfluidic platforms have increasingly been explored for in vitro blood diagnostics and for studying complex microvascular processes. The perfusion of blood in such devices is typically achieved through pressure driven set-ups. Surface tension driven blood flow provides an alternative flow delivery option, and various studies in the literature have examined the behaviour of blood flow in such fluidic devices. In such flows, the influence of red blood cell (RBC) aggregation, the phenomenon majorly responsible for the non-Newtonian nature of blood, requires particular attention. In the present work, we examine differences in the surface tension driven flow of aggregating, non-aggregating RBC, and Newtonian suspensions, in a rectangul...
Author manuscript; available in PMC 2012 March 1.We investigate the biophysical characteristics of h...
It is well known that certain pathological conditions result in a decrease of red blood cells (RBCs)...
AbstractWhen a red blood cell (RBC) is driven by a pressure gradient through a microfluidic channel,...
Surface tension driven microfluidic flows offer low-cost solutions for blood diagnostics due to the ...
Red blood cell (RBC) aggregation is a multifaceted phenomenon, and whether it is generally beneficia...
The red blood cell (RBC) aggregation phenomenon is majorly responsible for the non-Newtonian nature ...
The effect of erythrocyte aggregation on blood viscosity and microcirculatory flow is a poorly under...
Over the years, several experimental techniques were performed in in vitro environments, in an attem...
Red blood cells (RBCs) are the most abundant cells in human blood. Remarkably RBCs deform and bridge...
Human blood is a multiphase biofluid primarily composed by the deformable red blood cells (RBCs) sus...
Blood is a complex body fluid, composed of cells and plasma, which holds a massive amount of informa...
The non-Newtonian nature of blood arises from the presence of suspended formed elements which are th...
The deformability of a red blood cell (RBC) is one of the most important biological parameters affec...
The behaviour of blood flow in relation to microchannel surface roughness has been investigated. Sp...
Red blood cell aggregation plays a key role in microcirculatory flows, however, little is known abou...
Author manuscript; available in PMC 2012 March 1.We investigate the biophysical characteristics of h...
It is well known that certain pathological conditions result in a decrease of red blood cells (RBCs)...
AbstractWhen a red blood cell (RBC) is driven by a pressure gradient through a microfluidic channel,...
Surface tension driven microfluidic flows offer low-cost solutions for blood diagnostics due to the ...
Red blood cell (RBC) aggregation is a multifaceted phenomenon, and whether it is generally beneficia...
The red blood cell (RBC) aggregation phenomenon is majorly responsible for the non-Newtonian nature ...
The effect of erythrocyte aggregation on blood viscosity and microcirculatory flow is a poorly under...
Over the years, several experimental techniques were performed in in vitro environments, in an attem...
Red blood cells (RBCs) are the most abundant cells in human blood. Remarkably RBCs deform and bridge...
Human blood is a multiphase biofluid primarily composed by the deformable red blood cells (RBCs) sus...
Blood is a complex body fluid, composed of cells and plasma, which holds a massive amount of informa...
The non-Newtonian nature of blood arises from the presence of suspended formed elements which are th...
The deformability of a red blood cell (RBC) is one of the most important biological parameters affec...
The behaviour of blood flow in relation to microchannel surface roughness has been investigated. Sp...
Red blood cell aggregation plays a key role in microcirculatory flows, however, little is known abou...
Author manuscript; available in PMC 2012 March 1.We investigate the biophysical characteristics of h...
It is well known that certain pathological conditions result in a decrease of red blood cells (RBCs)...
AbstractWhen a red blood cell (RBC) is driven by a pressure gradient through a microfluidic channel,...