DocumentCode :
1439910
Title :
Representing Cardiac Bidomain Bath-Loading Effects by an Augmented Monodomain Approach: Application to Complex Ventricular Models
Author :
Bishop, Martin J. ; Plank, Gernot
Author_Institution :
Comput. Lab., Univ. of Oxford, Oxford, UK
Volume :
58
Issue :
4
fYear :
2011
fDate :
4/1/2011 12:00:00 AM
Firstpage :
1066
Lastpage :
1075
Abstract :
Although the cardiac bidomain model has been widely used in the simulation of electrical activation, its relatively computationally expensive nature means that monodomain approaches are generally required for long-duration simulations (for example, investigations of arrhythmia mechanisms). However, the presence of a conducting bath surrounding the tissue is known to induce wavefront curvature (surface leading bulk), a phenomena absent in standard monodomain approaches. Here, we investigate the bio physical origin of the bidomain bath-loading induced wavefront curvature and present a novel augmented monodomain-equivalent bidomain approach faithfully replicating all aspects of bidomain wavefront morphology and conduction velocity, but with a fraction of the computational cost. Bath-loading effects are shown to be highly dependent upon specific conductivity parameters, but less dependent upon the thickness or conductivity of the surrounding bath, with even relatively thin surrounding fluid layers (~ 0.1 mm) producing significant wavefront curvature in bidomain simulations. We demonstrate that our augmented monodomain approach can be easily adapted for different conductivity sets and applied to anatomically complex models, thus facilitating fast and accurate simulation of cardiac wavefront dynamics during long-duration simulations, further aiding the faithful comparison of simulations with experiments.
Keywords :
cardiology; electrocardiography; physiological models; arrhythmia mechanisms; augmented monodomain approach; bidomain wavefront morphology; cardiac bidomain bath-loading effects; cardiac bidomain model; cardiac wavefront dynamics; complex ventricular models; conducting bath; conduction velocity; electrical activation; long-duration simulations; surface leading bulk; tissue; wavefront curvature; Adaptation model; Computational modeling; Conductivity; Equations; Extracellular; Load modeling; Mathematical model; Bath-loading effect; bidomain equations; cardiac modeling; Action Potentials; Animals; Body Surface Potential Mapping; Computer Simulation; Finite Element Analysis; Heart Conduction System; Humans; Models, Cardiovascular; Ventricular Function, Left;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2010.2096425
Filename :
5705564
Link To Document :
بازگشت