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Electrode models for electric current computed tomography

IEEE Transactions on Biomedical Engineering · 1989 · Vol. 36(9) · pp. 918–924
Kuo‐Sheng ChengDavid IsaacsonJ.C. NewellD.G. Gisser

Abstract

This paper develops a mathematical model for the physical properties of electrodes suitable for use in electric current computed tomography (ECCT). The model includes the effects of discretization, shunt, and contact impedance. The complete model was validated by experiment. Bath resistivities of 284.0, 139.7, 62.3, 29.5 omega.cm were studied. Values of "effective" contact impedance zeta used in the numerical approximations were 58.0, 35.0, 15.0, and 7.5 omega.cm2, respectively. Agreement between the calculated and experimentally measured values was excellent throughout the range of bath conductivities studied. It is desirable in electrical impedance imaging systems to model the observed voltages to the same precision as they are measured in order to be able to make the highest resolution reconstructions of the internal conductivity that the measurement precision allows. The complete electrode model, which includes the effects of discretization of the current pattern, the shunt effect due to the highly conductive electrode material, and the effect of an "effective" contact impedance, allows calculation of the voltages due to any current pattern applied to a homogeneous resistivity field.

Electrical and Bioimpedance TomographyGeophysical and Geoelectrical MethodsElectrochemical Analysis and ApplicationsElectrodeCurrent (fluid)Computed tomographyTomographyElectric currentMaterials scienceCurrent densityElectrical engineeringEngineeringPhysics

MeSH terms

Computer SimulationElectric ConductivityElectrodesModels, TheoreticalTomography, X-Ray Computed
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