DocumentCode :
2724958
Title :
Characteristics of blood flow in microchannels and relevant impact on modelling blood behaviour in biochip separators
Author :
Xue, Xiangdong ; Wei, Xueyong
Author_Institution :
Sch. of Comput. & Math. Sci., Univ. of Greenwich, London, UK
fYear :
2012
fDate :
May 29 2012-June 1 2012
Firstpage :
1547
Lastpage :
1555
Abstract :
This paper reports a perspective investigation of computational modelling of blood fluid in microchannel devices as a preparation for future research on fluid-structure interaction (FSI) in biofluid mechanics. The investigation is carried out through two aspects, respectively on physical behaviours of blood flow in microchannels and appropriate methodology for modelling. The physics of blood flow is targeted to the challenges for describing blood flow in microchannels, including rheology of blood fluid, suspension features of red blood cells (RBCs), laminar hydrodynamic influence and effect of surface roughness. The analysis shows that due to the hyperelastic property of RBC and its comparable dimension with microchannels, blood fluid shows complex behaviours of two phase flow. The trajectory and migration of RBCs require accurate description of RBC deformation and interaction with plasma. Following on a discussion of modelling approaches, i.e. Eulerian method and Lagrangian method, the main stream modelling methods for multiphase flow are reviewed and their suitability to blood flow is analysed. It is concluded that the key issue for blood flow modelling is how to describe the suspended blood cells, modelled by Lagrangian method, and couple them with the based flow, modelled by Eulerian method. The multiphase flow methods are thereby classified based on the number of points required for describing a particle, as follows: (i) single-point particle methods, (ii) mutli-point particle methods, (iii) functional particle methods, and (iv) fluid particle methods. While single-point particle methods concentrate on particle dynamic movement, multipoint and functional particle methods can take into account particle mechanics and thus offer more detailed information for individual particles. Fluid particle methods provide good compromise between two phases, but require additional information for particle mechanics. For furthermore detailed description, we suggest to investig- te the possibility using two domain coupling method, in which particles and base flow are modelled by two separated solvers. It is expected that this paper could clarify relevant issues in numerical modelling of blood flow in microchannels and induce some considerations for modelling blood flow using multiphase flow methods.
Keywords :
cellular biophysics; haemodynamics; haemorheology; hydrodynamics; lab-on-a-chip; microchannel flow; plasma interactions; surface roughness; suspensions; Eulerian method; Lagrangian method; RBC deformation; biochip separators; blood behaviour; blood flow; blood fluid; domain coupling; fluid particle; functional particle; hyperelastic property; laminar hydrodynamic influence; microchannel devices; mutlipoint particle; plasma interaction; red blood cells; rheology; single-point particle; surface roughness; suspension features; Blood; Blood flow; Cells (biology); Fluids; Microchannel; Rough surfaces; Surface roughness;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronic Components and Technology Conference (ECTC), 2012 IEEE 62nd
Conference_Location :
San Diego, CA
ISSN :
0569-5503
Print_ISBN :
978-1-4673-1966-9
Electronic_ISBN :
0569-5503
Type :
conf
DOI :
10.1109/ECTC.2012.6249041
Filename :
6249041
Link To Document :
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