• DocumentCode
    1205261
  • Title

    Finite element models of thoracic conductive anatomy: sensitivity to changes in inhomogeneity and anisotropy

  • Author

    Karlon, William J. ; Lehr, John L. ; Eisenberg, Solomon R.

  • Author_Institution
    Dept. of Biomed. Eng., Boston Univ., MA, USA
  • Volume
    41
  • Issue
    11
  • fYear
    1994
  • Firstpage
    1010
  • Lastpage
    1017
  • Abstract
    A moderately detailed 3-D finite element model of the conductive anatomy of a canine thorax was used to examine the sensitivity of the results obtained during simulated transthoracic defibrillation to variations in skeletal muscle anisotropy and differing degrees of model inhomogeneity. The authors results suggest that the myocardial current density distribution is not particularly sensitive to the method used to model skeletal muscle anisotropy. However, anisotropy variations caused defibrillation parameters such as paddle to paddle impedance and threshold current to change by as much as 50%. The authors found a greater sensitivity in the myocardial current density and the defibrillation parameters to variations in model inhomogeneity. The changes observed in both depended substantially on paddle placement. This sensitivity to paddle placement highlights the difficulty in predicting how a reduction in anatomical detail will affect the myocardial current density distribution. In general, the authors found the defibrillation parameters to be more sensitive than the myocardial current density distribution to the variations in anatomical detail they examined.
  • Keywords
    bioelectric phenomena; finite element analysis; muscle; physiological models; anatomical detail; canine thorax; defibrillation parameters; finite element models; model inhomogeneity; myocardial current density distribution; paddle placement; simulated transthoracic defibrillation; skeletal muscle anisotropy; thoracic conductive anatomy; Anatomy; Anisotropic magnetoresistance; Current density; Defibrillation; Finite element methods; Impedance; Muscles; Myocardium; Thorax; Threshold current; Animals; Anisotropy; Dogs; Electric Conductivity; Electric Countershock; Heart; Models, Anatomic; Muscle, Skeletal; Radiography, Thoracic; Sensitivity and Specificity; Thorax; Tomography, X-Ray Computed;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.335838
  • Filename
    335838