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Deformation of a Red Blood Cell in a Narrow Rectangular Microchannel
- Source :
- Micromachines, Micromachines, Vol 10, Iss 3, p 199 (2019), Volume 10, Issue 3
- Publication Year :
- 2019
- Publisher :
- MDPI, 2019.
-
Abstract
- Takeishi, Naoki, Hiroaki Ito, Makoto Kaneko, and Shigeo Wada. 2019. "Deformation of a Red Blood Cell in a Narrow Rectangular Microchannel" Micromachines 10, no. 3: 199. https://doi.org/10.3390/mi10030199<br />The deformability of a red blood cell (RBC) is one of the most important biological parameters affecting blood flow, both in large arteries and in the microcirculation, and hence it can be used to quantify the cell state. Despite numerous studies on the mechanical properties of RBCs, including cell rigidity, much is still unknown about the relationship between deformability and the configuration of flowing cells, especially in a confined rectangular channel. Recent computer simulation techniques have successfully been used to investigate the detailed behavior of RBCs in a channel, but the dynamics of a translating RBC in a narrow rectangular microchannel have not yet been fully understood. In this study, we numerically investigated the behavior of RBCs flowing at different velocities in a narrow rectangular microchannel that mimicked a microfluidic device. The problem is characterized by the capillary number Ca, which is the ratio between the fluid viscous force and the membrane elastic force. We found that confined RBCs in a narrow rectangular microchannel maintained a nearly unchanged biconcave shape at low Ca, then assumed an asymmetrical slipper shape at moderate Ca, and finally attained a symmetrical parachute shape at high Ca. Once a RBC deformed into one of these shapes, it was maintained as the final stable configurations. Since the slipper shape was only found at moderate Ca, measuring configurations of flowing cells will be helpful to quantify the cell state.
- Subjects :
- Materials science
lcsh:Mechanical engineering and machinery
Physics::Medical Physics
Microfluidics
finite element method
Lattice Boltzmann methods
02 engineering and technology
Article
Quantitative Biology::Cell Behavior
Physics::Fluid Dynamics
03 medical and health sciences
immersed boundary method
Lattice-Boltzmann method
lcsh:TJ1-1570
Electrical and Electronic Engineering
030304 developmental biology
0303 health sciences
Microchannel
computational biomechanics
narrow rectangular microchannel
Mechanical Engineering
Blood flow
Mechanics
Immersed boundary method
021001 nanoscience & nanotechnology
Finite element method
Capillary number
TheoryofComputation_MATHEMATICALLOGICANDFORMALLANGUAGES
Membrane
Lattice–Boltzmann method
Control and Systems Engineering
Computer Science::Programming Languages
0210 nano-technology
red blood cells
Subjects
Details
- Language :
- English
- ISSN :
- 2072666X
- Volume :
- 10
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Micromachines
- Accession number :
- edsair.doi.dedup.....80b53aa44c6fe778d722a79cd7f6152c