Title :
Computer simulation of ventricular fibrillation and of defibrillating electric shocks
Author :
Auger, P.M. ; Bardou, A.L. ; Coulombe, A. ; Chesnais, J.M.
Author_Institution :
Lab. de Biophysique, Fac. de Pharmacie de Dijon, France
Abstract :
Computer simulations of the depolarizing wave inside a bidimensional ventricle element using the Huyghens principle are described. The authors simulate permanent conditions leading to uncoordinated contraction of the ventricular fibers induced by unidirectional blocks. They study the influence of anisotropic conduction on the initialization of reentry. They calculate the critical size of the unidirectional block required to generate a reentry for normal and ischemic tissues, for both isotropic and anisotropic conduction. Once a permanent malfunction is initialized, they simulate electric shocks with different percentages of cells depolarized by the shock. They show that in order to be sure to stop the rotating waves, it is necessary to depolarize all the excitable cells. Even a few nondepolarized cells are sufficient to reinitialize several periodic rotating waves
Keywords :
bioelectric phenomena; biology computing; cardiology; digital simulation; muscle; Huyghens principle; anisotropic conduction; bidimensional ventricle element; computer simulation; defibrillating electric shocks; ischemic tissues; normal tissues; periodic rotating waves; unidirectional block; ventricular fibers; ventricular fibrillation; Anisotropic magnetoresistance; Cardiac tissue; Computational modeling; Computer networks; Computer simulation; Electric shock; Fibrillation; Heart; Nerve tissues; Surface waves;
Conference_Titel :
Computers in Cardiology, 1988. Proceedings.
Conference_Location :
Washington, DC
Print_ISBN :
0-8186-1949-X
DOI :
10.1109/CIC.1988.72641