• DocumentCode
    1397497
  • Title

    A finite element model of a microwave catheter for cardiac ablation

  • Author

    Kaouk, Zouheir ; Khebir, Ahmed ; Savard, Pierre

  • Author_Institution
    Inst. of Biomed. Eng., Ecole Polytech. & Univ. de Montreal, Que., Canada
  • Volume
    44
  • Issue
    10
  • fYear
    1996
  • fDate
    10/1/1996 12:00:00 AM
  • Firstpage
    1848
  • Lastpage
    1854
  • Abstract
    To investigate the delivery of microwave energy by a catheter located inside the heart for the purpose of ablating small abnormal regions producing cardiac arrhythmias, a numerical model was developed. This model is based on the finite element method and can solve both the electromagnetic field and the temperature distribution resulting from the radiated power for axisymmetrical geometries. The antenna, which is fed by a coaxial cable with a 2.4 mm diameter, is constituted by a monopole which is terminated by a metallic cylindrical cap. The heart model can be either homogeneous or constituted of coaxial cylindrical shells with different electrical and thermal conductivities representing the intracavitary blood masses, the heart, and the torso. Experimental measurements obtained in an homogeneous tissue equivalent medium, such as the reflection coefficient of the antenna at different frequencies and for different monopole lengths, the radial and axial steady-state temperature profiles, end the time course of the temperature rise, were all in close agreement with the values computed with the model, accurate modeling is a useful prerequisite for the design of antennas, and these results confirm the validity of the catheter-heart model for the investigation and the development of microwave catheters
  • Keywords
    cardiology; finite element analysis; hyperthermia; microwave heating; physiological models; radiation therapy; temperature distribution; 2.4 mm; antenna reflection coefficient; axial steady-state temperature profile; cardiac ablation; catheter-heart model; electromagnetic field distribution; finite element model; heart; homogeneous tissue equivalent medium; intracavitary blood masses; microwave catheter; monopole length; radial steady-state temperature profile; small abnormal regions ablation; torso; Catheters; Electromagnetic modeling; Finite element methods; Heart; Microwave antennas; Numerical models; Reflector antennas; Solid modeling; Temperature; Thermal conductivity;
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/22.539943
  • Filename
    539943