DocumentCode
746326
Title
FEM analysis of predicting electrode-myocardium contact from RF cardiac catheter ablation system impedance
Author
Cao, Hong ; Speidel, Michael A. ; Tsai, Jang-Zern ; Van Lysel, Michael S. ; Vorperian, Vicken R. ; Webster, John G.
Author_Institution
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
Volume
49
Issue
6
fYear
2002
fDate
6/1/2002 12:00:00 AM
Firstpage
520
Lastpage
526
Abstract
We used the finite-element method (FEM) to model and analyze the resistance between the catheter tip electrode and the dispersive electrode during radio-frequency cardiac catheter ablation for the prediction of myocardium-electrode contact. We included deformation of the myocardial surface to achieve accurate modeling. For perpendicular catheter contact, we measured the side view of myocardial deformation using X-ray projection imaging. We averaged the deformation contour from nine samples, and then incorporated the contour information into our FEM model. We measured the resistivity of the bovine myocardium using the four-electrode method, and then calculated the resistance change as the catheter penetrated into the myocardium. The FEM result of resistance versus catheter penetration depth matches well with our experimental data.
Keywords
bioelectric phenomena; biomedical electrodes; finite element analysis; muscle; patient treatment; physiological models; FEM analysis; RF cardiac catheter ablation system impedance; X-ray projection imaging; bovine myocardium; catheter penetration depth; contour information; electrode-myocardium contact prediction; experimental data; four-electrode method; medical therapeutic technique; resistance; Catheters; Contact resistance; Deformable models; Electrical resistance measurement; Electrodes; Finite element methods; Myocardium; Predictive models; Radio frequency; Surface impedance; Animals; Catheter Ablation; Cattle; Elasticity; Electric Impedance; Electrodes; Finite Element Analysis; Image Processing, Computer-Assisted; Models, Cardiovascular; Myocardium; Radio Waves; Stress, Mechanical;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2002.1001965
Filename
1001965
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