In this dissertation, we have developed a fluid-structure interaction code specifically designed to simulate soft microparticle deformation in biological flow. We have used this tool for two different applications. First, we study red blood cell deformation under shear flow to evaluate stress distribution on membrane and subsequently pore formation on RBC membrane. Second, we utilized this code to show a proof of concept for an idea where we can separate soft particles based on their biophysical properties. In the following, these applications are discussed in more details.Under high shear rates, pores form on RBC membrane through which hemoglobin leaks out and increases free hemoglobin content of plasma leading to hemolysis. We hypothesize...
AbstractThe mechanical properties of Red Blood Cells (RBCs) are influenced by invasion and occupatio...
Human blood can be approximated as a dense suspension of red blood cells in plasma. Here, we present...
Accurate and reliable modeling of cardiovascular hemodynamics has the potential to improve understan...
In order to simulate cellular blood, a coarse-grained spectrin-link (SL) red blood cell (RBC) membra...
AbstractEfficient flow of red blood cells (RBCs) and white blood cells (WBCs) through the microcircu...
The Computational Haemodynamics Research Group (CHRG) in Technological University Dublin is developi...
Whole blood is a complex suspension of cells, where the emergent rheology and transport phenomena ar...
Red blood cells (RBCs) are the most common type of cells in human blood and they exhibit different t...
In-silico cellular models of blood are invaluable to gain understanding about the many interesting p...
In-silico cellular models of blood are invaluable to gain understanding about the many interesting p...
This thesis develops a mesoscopic technique based on the numerical concepts of Lattice Boltzmann Met...
Recent research has revealed that cells dynamically sense and respond to their physical microenviron...
In this paper the area-difference-energy spring-particle (ADE-SP) red blood cell (RBC) structural mo...
Accurate and reliable modeling of cardiovascular hemodynamics has the potential to improve understan...
There are many important systems which involve the flow of dense suspensions of deformable particle...
AbstractThe mechanical properties of Red Blood Cells (RBCs) are influenced by invasion and occupatio...
Human blood can be approximated as a dense suspension of red blood cells in plasma. Here, we present...
Accurate and reliable modeling of cardiovascular hemodynamics has the potential to improve understan...
In order to simulate cellular blood, a coarse-grained spectrin-link (SL) red blood cell (RBC) membra...
AbstractEfficient flow of red blood cells (RBCs) and white blood cells (WBCs) through the microcircu...
The Computational Haemodynamics Research Group (CHRG) in Technological University Dublin is developi...
Whole blood is a complex suspension of cells, where the emergent rheology and transport phenomena ar...
Red blood cells (RBCs) are the most common type of cells in human blood and they exhibit different t...
In-silico cellular models of blood are invaluable to gain understanding about the many interesting p...
In-silico cellular models of blood are invaluable to gain understanding about the many interesting p...
This thesis develops a mesoscopic technique based on the numerical concepts of Lattice Boltzmann Met...
Recent research has revealed that cells dynamically sense and respond to their physical microenviron...
In this paper the area-difference-energy spring-particle (ADE-SP) red blood cell (RBC) structural mo...
Accurate and reliable modeling of cardiovascular hemodynamics has the potential to improve understan...
There are many important systems which involve the flow of dense suspensions of deformable particle...
AbstractThe mechanical properties of Red Blood Cells (RBCs) are influenced by invasion and occupatio...
Human blood can be approximated as a dense suspension of red blood cells in plasma. Here, we present...
Accurate and reliable modeling of cardiovascular hemodynamics has the potential to improve understan...