DocumentCode
1291676
Title
Dependence of apparent resistance of four-electrode probes on insertion depth
Author
Tsai, Jang-Zern ; Cao, Hong ; Tungjitkusolmun, Supan ; Je Woo, Eung ; Vorperian, Vicken R. ; Webster, John G.
Author_Institution
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
Volume
47
Issue
1
fYear
2000
Firstpage
41
Lastpage
48
Abstract
The apparent resistance of a finite-thickness layer measured with a four-electrode plunge probe depends on the electrode insertion depth, electrode spacing, and layer thickness, as well as the resistivity ratio of an underlying layer. A physical model consisting of air, a saline solution layer, and an agar layer simulates the real situation of resistivity measurement. The saline layer represents the finite-thickness layer whose resistivity is to be measured by a plunge electrode probe, and the agar layer represents an underlying perturbing layer. A micropositioner controls the insertion depth of the four electrodes into the saline solution. With the apparent resistance measured on a semi-infinite thickness layer of saline solution as standard, measurement results show decreasing apparent resistance and increasing error with increasing electrode insertion depth. This information is important for correct measurement of myocardial resistivity in vivo and in vitro.
Keywords
bioelectric phenomena; biomedical electrodes; biomedical measurement; cardiology; electric impedance measurement; electrical resistivity; muscle; physiological models; agar layer; apparent resistance; calibration; electrode spacing; finite-thickness layer; four-electrode plunge probe; four-electrode probes; four-terminal impedance measurement; in vitro measurement; in vivo measurement; insertion depth dependence; multiple-layer model; myocardial resistivity; physical model; resistivity ratio; saline solution layer; semi-infinite thickness layer; underlying layer; Biomedical measurements; Conductivity; Electrical resistance measurement; Electrodes; Immune system; Impedance measurement; Myocardium; Polarization; Probes; Voltage; Calibration; Catheter Ablation; Electric Impedance; Electrodes; Equipment Design; Models, Cardiovascular; Pericardium;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.817618
Filename
817618
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