Title :
Distribution of SAR and temperature elevation induced in a phantom by a microwave cardiac ablation catheter
Author :
Bernardi, Paolo ; Cavagnaro, Marta ; Lin, James C. ; Pisa, Stefano ; Piuzzi, Emanuele
Author_Institution :
Dept. of Electron. Eng., Univ. of Rome "La Sapienza", Italy
Abstract :
A two-dimensional cylindrical-coordinate (2-D-cyl) finite-difference (FD) time-domain code together with an explicit 2-D-cyl FD solution of the bioheat equation were used for studying a 2450-MHz cap-choke antenna designed for microwave cardiac ablation. Following validation based on results available in literature, the numerical tools were used to evaluate the performance of the catheter antenna embedded in a homogeneous dielectric phantom. The results highlight the ability of the cap-choke catheter antenna to produce high specific absorption rate (SAR) values near the tip and, in contrast, very low SAR values along the antenna length. The comparison of computed data with measurements shows a good agreement between numerical and experimental results. The numerical tools were subsequently applied to analyze the catheter antenna embedded in a two-layer heart model in order to evaluate the depth of induced lesions in a more realistic model of the operating condition. In particular, both the effect of the antenna position relative to the blood-muscle interface (simply touching or pressed inside the muscle) and the effect of blood velocity (taking into account over-leaflets and underneath-leaflets positions) were investigated. It is shown that a lesion depth of 5 mm in a heart region with low blood perfusion could be obtained with approximately 16 W of radiated power, applied for 60 s.
Keywords :
biothermics; blood; cardiology; catheters; dielectric materials; finite difference time-domain analysis; haemorheology; microwave antennas; microwave heating; muscle; performance evaluation; phantoms; radiation therapy; 16 W; 2450 MHz; SAR; antenna length; bioheat equation; blood perfusion; blood velocity; blood-muscle interface; cap choke antenna; catheter antenna; dielectric phantom; finite difference time domain code; leaflet; leaflets; lesion depth; microwave cardiac ablation; microwave cardiac ablation catheter; numerical analysis; performance evaluation; specific absorption rate; specific absorption rate distribution; temperature elevation; two dimensional cylindrical coordinate; two layer heart model; underneath-leaflets positions; Blood; Catheters; Equations; Finite difference methods; Heart; Imaging phantoms; Lesions; Specific absorption rate; Temperature distribution; Time domain analysis; 2450-MHz antenna; BHE; Bioheat equation; FDTD; MW; cap-choke antenna; cardiac ablation; catheter antenna; finite-difference time-domain; methods; microwave; power density distribution; temperature distribution;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2004.832031