DocumentCode :
3417
Title :
Analysis of the Spatial Sensitivity of Conductance/Admittance Catheter Ventricular Volume Estimation
Author :
Larson, E.R. ; Feldman, Michael D. ; Valvano, J.W. ; Pearce, John A.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Texas at Austin, Austin, TX, USA
Volume :
60
Issue :
8
fYear :
2013
fDate :
Aug. 2013
Firstpage :
2316
Lastpage :
2324
Abstract :
Conductance catheters are known to have a nonuniform spatial sensitivity due to the distribution of the electric field. The Geselowitz relation is applied to murine and multisegment conductance catheters using finite element models to determine the spatial sensitivity in a uniform medium and simplified left ventricle models. A new formulation is proposed that allows determination of the spatial sensitivity to admittance. Analysis of FEM numerical modeling results using the Geselowitz relation provides a true measure of parallel conductance in simplified left ventricle models for assessment of the admittance method and hypertonic saline techniques. The spatial sensitivity of blood conductance (Gb) is determined throughout the cardiac cycle. Gb is converted to volume using Wei´s equation to determine if the presence of myocardium alters the nonlinear relationship through changes to the electric field. Results show that muscle conductance (Gm) from the admittance method matches results from the Geselowitz relation and that the relationship between Gb and volume is accurately fit using Wei´s equation. Single-segment admittance measurements in large animals result in a more evenly distributed sensitivity to the LV blood pool. The hypertonic saline method overestimates parallel conductance throughout the cardiac cycle in both murine and multisegment conductance catheters.
Keywords :
bioelectric potentials; biomedical measurement; blood; cardiology; catheters; electric admittance measurement; finite element analysis; neuromuscular stimulation; physiological models; FEM numerical modeling; Geselowitz relation; Wei equation; admittance catheter ventricular volume estimation; blood conductance; cardiac cycle; conductance catheter ventricular volume estimation; electric field distribution; finite element model; hypertonic saline technique; left ventricle blood pool; left ventricle model; murine catheter; muscle conductance; myocardium; single-segment admittance measurement; spatial sensitivity analysis; Admittance; Blood; Catheters; Electrodes; Mathematical model; Muscles; Sensitivity; Conductivity; conductance catheter; permittivity; sensitivity; tetrapolar; Algorithms; Animals; Cardiac Catheters; Electric Impedance; Equipment Design; Equipment Failure Analysis; Heart Ventricles; Mice; Organ Size; Plethysmography, Impedance; Reproducibility of Results; Sensitivity and Specificity; Spatio-Temporal Analysis; Stroke Volume; Ventricular Function, Left;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2013.2256134
Filename :
6491459
Link To Document :
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