DocumentCode :
1362548
Title :
Switchable Faraday Shielding With Application to Reducing the Pain of Internal Cardiac Defibrillation While Permitting External Defibrillation
Author :
Kolandaivelu, Aravindan ; Jayanti, Venku ; Halperin, Henry R. ; Berger, Ronald D.
Author_Institution :
Sch. of Med., Cardiology Div., Johns Hopkins Univ., Baltimore, MD, USA
Volume :
59
Issue :
2
fYear :
2012
Firstpage :
409
Lastpage :
416
Abstract :
Switchable Faraday shielding is desirable in situations where electric field shielding is required at certain times and undesirable at other times. In this study, electrostatic finite element modeling was used to assess the effect of different shield geometries on the leakage of an internally applied field and penetration of an externally applied field. “Switching OFF” the shield by electrically disconnecting shield faces from each other was shown to significantly increase external field penetration. Applying this model to defibrillation, we looked at the effect of spacing and size of shield panels to maximize the ability to deliver an external defibrillation shock to the heart when shield panels are disconnected while providing acceptably low leakage of internal defibrillation shocks to avoid painful skeletal muscle capture when shield panels are connected. This analysis may be useful for designing internal defibrillator electrodes that preserve the efficacy of internal and external defibrillation while avoiding the significant morbidity associated with painful defibrillator shocks. Similar analysis could also guide optimizing the switchable Faraday shielding concept for other applications.
Keywords :
biomedical electrodes; cardiovascular system; finite element analysis; muscle; radiation therapy; electric field shielding; electrostatic finite element modeling; external defibrillation; external defibrillation shock; external field penetration; heart; internal cardiac defibrillation pain; internal defibrillator electrode; painful defibrillator shock; skeletal muscle; switchable Faraday shielding; switching OFF; Defibrillation; Electric fields; Electric potential; Electric shock; Electrodes; Heart; Switches; Defibrillation; design optimization; electrostatic modeling; electrostatic shielding; Defibrillators; Defibrillators, Implantable; Finite Element Analysis; Humans; Models, Theoretical; Pain; Static Electricity;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2011.2173687
Filename :
6061948
Link To Document :
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