DocumentCode :
2212579
Title :
End-fire catheter antenna for microwave ablation of the endocardium
Author :
Kasevich, R.S. ; Price, S.L. ; Selikowitz, S.M. ; LaCourse, J.R. ; Smith, W.M.
Author_Institution :
KAI Technol. Inc., Portsmouth, UK
fYear :
1997
fDate :
21-22 May 1997
Firstpage :
46
Lastpage :
47
Abstract :
A novel catheter antenna for microwave medical applications has been developed. The antenna provides an end-fire heating pattern and dielectric bifurcated choke to minimize current leakage. The concept employed for end-fire performance involves impedance loading on the antenna structure to achieve a traveling wave distribution of current. The antenna need not be in contact with the endocardium for successful launching of the microwave energy in the end-fire direction. Simply pointing it at the target tissue is sufficient to create deep lesions. The capacitive loading effect on the antenna by myocardium and catheter construction are considered in the design of the system for optimum radiation and energy coupling efficiency. Numerical modeling provides a way to optimize the design of antennas such as the catheterized end-fire antenna discussed previously. The numerical electromagnetics code (NEC-4) a method-of-moments code and XFDTD which employs a finite-difference time domain technique are examples. Data are presented using NEC-4 showing how the heating pattern at microwave frequency can become end-fire by moving an impedance load to the correct position on the antenna. The value of the impedance load on the antenna and position were determined using Romberg integration to solve for the antenna´s expansion parameter
Keywords :
biomedical equipment; cardiology; finite difference time-domain analysis; hyperthermia; method of moments; microwave antenna arrays; microwave heating; monopole antenna arrays; radiation therapy; NEC-4 runs; Romberg integration; SAR pattern; XFDTD runs; capacitive loading effect; current leakage; deep lesions; dielectric bifurcated choke; electromagnetic pattern; end-fire catheter antenna; end-fire heating pattern; endocardium; energy coupling efficiency; finite-difference time domain technique; impedance loading; method-of-moments code; microwave ablation; microwave medical applications; myocardium; numerical electromagnetics code; numerical modeling; optimum radiation; specific power absorption rate; temperature; time requirements; tissue; traveling wave distribution; Bifurcation; Biomedical equipment; Catheters; Dielectrics; Electromagnetic heating; Impedance; Inductors; Loaded antennas; Medical services; Microwave antennas;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering Conference, 1997., Proceedings of the IEEE 1997 23rd Northeast
Conference_Location :
Durham, NH
Print_ISBN :
0-7803-3848-0
Type :
conf
DOI :
10.1109/NEBC.1997.594950
Filename :
594950
Link To Document :
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