DocumentCode
1555298
Title
Modeling bipolar phase-shifted multielectrode catheter ablation
Author
Tungjitkusolmun, Supan ; Haemmerich, Dieter ; Cao, Hong ; Tsai, Jang-Zern ; Choy, Young Bin ; Vorperian, Vicken R. ; Webster, John G.
Author_Institution
Dept. of Electron. Eng., King Mongkut´´s Inst. of Technol., Bangkok, Thailand
Volume
49
Issue
1
fYear
2002
fDate
1/1/2002 12:00:00 AM
Firstpage
10
Lastpage
17
Abstract
Atrial fibrillation (AFIB) is a common clinical problem affecting approximately 0.5-1% of the United States population. Radio-frequency (RF) multielectrode catheter (MEC) ablation has successes in curing AFIB. We utilized finite-element method analysis to determine the myocardial temperature distribution after 30 s, 80°C temperature-controlled unipolar ablation using three 7F 12.5-mm electrodes with 2-mm interelectrode spacing MEC. Numerical results demonstrated that cold spots occurred at the edges of the middle electrode and hot spots at the side electrodes. We introduced the bipolar phase-shifted technique for RF energy delivery of MEC ablation. We determined the optimal phase-shift (φ) between the two sinusoidal voltage sources of a simplified two-dimensional finite-element model. At the optimal φ, we can achieve a temperature distribution that minimizes the difference between temperatures at electrode edges. We also studied the effects of myocardial electric conductivity (a), thermal conductivity (k), and the electrode spacing on the optimal φ. When we varied or and k from 50% to 150%, optimal φ ranged from 29.5° to 23.5°, and in the vicinity of 26.5°, respectively. The optimal φ for 3-mm spacing MEC was 30.5°. We show the design of a simplified bipolar phase-shifted MEC ablation system
Keywords
biomedical electrodes; cardiology; finite element analysis; hyperthermia; physiological models; radiofrequency heating; temperature distribution; 12.5 mm; 2 mm; 3 mm; 30 s; 80 C; bipolar phase-shifted multielectrode catheter ablation modeling; bipolar phase-shifted technique; cold spots; electric conductivity; electrode spacing; middle electrode; myocardial temperature distribution; side electrodes; simplified bipolar phase-shifted ablation system; simplified two-dimensional finite-element model; thermal conductivity; Atrial fibrillation; Catheters; Curing; Electrodes; Finite element methods; Myocardium; Radio frequency; Temperature distribution; Thermal conductivity; Voltage;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.972835
Filename
972835
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