Title of article :
Immersed finite element method and its applications to biological systems Original Research Article
Author/Authors :
Wing Kam Liu، نويسنده , , Yaling Liu، نويسنده , , David Farrell، نويسنده , , Lucy Zhang، نويسنده , , X. Sheldon Wang، نويسنده , , Yoshio Fukui، نويسنده , , Neelesh Patankar، نويسنده , , Yongjie Zhang، نويسنده , , Chandrajit Bajaj، نويسنده , , Junghoon Lee، نويسنده , , Juhee Hong، نويسنده , , Xinyu Chen، نويسنده , , Huayi Hsu، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Pages :
28
From page :
1722
To page :
1749
Abstract :
This paper summarizes the newly developed immersed finite element method (IFEM) and its applications to the modeling of biological systems. This work was inspired by the pioneering work of Professor T.J.R. Hughes in solving fluid–structure interaction problems. In IFEM, a Lagrangian solid mesh moves on top of a background Eulerian fluid mesh which spans the entire computational domain. Hence, mesh generation is greatly simplified. Moreover, both fluid and solid domains are modeled with the finite element method and the continuity between the fluid and solid sub-domains is enforced via the interpolation of the velocities and the distribution of the forces with the reproducing Kernel particle method (RKPM) delta function. The proposed method is used to study the fluid–structure interaction problems encountered in human cardiovascular systems. Currently, the heart modeling is being constructed and the deployment process of an angioplasty stent has been simulated. Some preliminary results on monocyte and platelet deposition are presented. Blood rheology, in particular, the shear-rate dependent de-aggregation of red blood cell (RBC) clusters and the transport of deformable cells, are modeled. Furthermore, IFEM is combined with electrokinetics to study the mechanisms of nano/bio filament assembly for the understanding of cell motility.
Keywords :
Cell motility , Surgical corrective procedures , Immersed finite element method , Nano-electro-mechanical-sensors , Reproducing kernel particle method , Fluid–structure interaction , Cytoskeletal dynamics , Red blood cell , aggregation , Thrombosis , Cardiovascular system , Micro-circulation
Journal title :
Computer Methods in Applied Mechanics and Engineering
Serial Year :
2005
Journal title :
Computer Methods in Applied Mechanics and Engineering
Record number :
893469
Link To Document :
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