DocumentCode :
104955
Title :
An Efficient Finite Element Approach for Modeling Fibrotic Clefts in the Heart
Author :
Mendonca Costa, Caroline ; Campos, Fernando O. ; Prassl, Anton J. ; Weber dos Santos, Rodrigo ; Sanchez-Quintana, Damian ; Ahammer, Helmut ; Hofer, Ernst ; Plank, Graeme
Author_Institution :
Inst. of Biophys., Med. Univ. of Graz, Graz, Austria
Volume :
61
Issue :
3
fYear :
2014
fDate :
Mar-14
Firstpage :
900
Lastpage :
910
Abstract :
Advanced medical imaging technologies provide a wealth of information on cardiac anatomy and structure at a paracellular resolution, allowing to identify microstructural discontinuities which disrupt the intracellular matrix. Current state-of-the-art computer models built upon such datasets account for increasingly finer anatomical details, however, structural discontinuities at the paracellular level are typically discarded in the model generation process, owing to the significant costs which incur when using high resolutions for explicit representation. In this study, a novel discontinuous finite element (dFE) approach for discretizing the bidomain equations is presented, which accounts for fine-scale structures in a computer model without the need to increase spatial resolution. In the dFE method, this is achieved by imposing infinitely thin lines of electrical insulation along edges of finite elements which approximate the geometry of discontinuities in the intracellular matrix. Simulation results demonstrate that the dFE approach accounts for effects induced by microscopic size scale discontinuities, such as the formation of microscopic virtual electrodes, with vast computational savings as compared to high resolution continuous finite element models. Moreover, the method can be implemented in any standard continuous finite element code with minor effort.
Keywords :
biomedical electrodes; cellular biophysics; diseases; electrocardiography; finite element analysis; image resolution; image segmentation; medical image processing; bidomain equations; cardiac anatomy; cardiac structure; computational savings; datasets; discontinuous finite element approach; efficient finite element approach; electrical insulation; fibrotic clefts modeling; heart; high resolution continuous finite element models; intracellular matrix; medical imaging technologies; microscopic size scale discontinuities; microscopic virtual electrodes; microstructural discontinuities; paracellular resolution; spatial resolution; standard continuous finite element code; structural discontinuities; Computational modeling; Extracellular; Finite element analysis; Frequency modulation; Image resolution; Iron; Mathematical model; Bidomain equation; computational efficiency; defibrillation; finite element analysis; numerical models; tissue structure;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2013.2292320
Filename :
6671927
Link To Document :
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