Title :
Defibrillation impedance: including an inductive element
Author :
Guan, D. ; Powell, C. ; Malkin, R.
Author_Institution :
Dept. of Biomed. Eng., Memphis State Univ., TN, USA
Abstract :
A new equivalent circuit model is proposed to quantify the defibrillation impedance for short pulses. Six male guinea pigs (850-1050 g) were used. A defibrillator delivered square voltage pulses (200 V). Three electrode placements were tested randomly: normal, abdominal, and subcutaneous. The equivalent circuit model was determined according to the best fitting curves of current waveforms in the first 3 ms. An inductor was included in the model to account for the rising current waveforms. The inductors were 213±57, 40±10 and 236±39 for the normal subcutaneous and abdominal placements, respectively. The skin to the electrodes appears to be the major source of the inductance, the heart and lungs do not make substantial contributions. The mechanism of the inductance could be electroporation of the stratum corneum and cell membranes. This inductive model better predicts defibrillation impedance for short waveforms
Keywords :
biomedical electrodes; defibrillators; electric impedance; equivalent circuits; physiological models; 200 V; 3 ms; best fitting curves; current waveforms; defibrillation impedance; equivalent circuit model; inductive element; male guinea pigs; square voltage pulses; Abdomen; Circuit testing; Defibrillation; Electrodes; Equivalent circuits; Impedance; Inductance; Inductors; Pulse circuits; Voltage;
Conference_Titel :
Computers in Cardiology 2000
Conference_Location :
Cambridge, MA
Print_ISBN :
0-7803-6557-7
DOI :
10.1109/CIC.2000.898580