Title :
Optimization of the deposited power distribution inside a layered lossy medium irradiated by a coupled system of concentrically placed waveguide applicators
Author :
Nikita, Konstantina S. ; Maratos, Nicholas G. ; Uzunoglu, Nikolaos K.
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Greece
fDate :
7/1/1998 12:00:00 AM
Abstract :
A method is proposed for controlling the deposited power distribution in a layered cylindrical lossy model, irradiated by a phased-array hyperthermia system consisting of four waveguide applicators. A rigorous electromagnetic model of the heated tissue, which takes into account coupling phenomena between system elements, is used for predicting the electric field at any point inside tissue. The relative amplitudes and relative phases of the array elements are optimized in order to attain desired specific absorption rate (SAR) distributions inside and outside malignant tissues. A constrained nonlinear optimization problem is solved by using the penalty function method and the resulting unconstrained minimization of the penalty function is carried out by the downhill simplex method. Two practical phased-array hyperthermia systems have been studied and numerical results are presented.
Keywords :
hyperthermia; microwave heating; optimisation; physiological models; radiation therapy; waveguide antenna arrays; array element; concentrically placed waveguide applicators; constrained nonlinear optimization problem; coupled system; coupling phenomena; deposited power distribution; desired specific absorption rate distributions; downhill simplex method; electric field; heated tissue; inside malignant tissues; layered cylindrical lossy model; layered lossy medium; outside malignant tissues; penalty function method; phased-array hyperthermia system; practical phased-array hyperthermia systems; relative amplitudes; relative phases; rigorous electromagnetic model; system elements; unconstrained minimization; Applicators; Electromagnetic coupling; Electromagnetic heating; Electromagnetic modeling; Electromagnetic waveguides; Hyperthermia; Phased arrays; Power distribution; Power system modeling; Resistance heating; Algorithms; Electricity; Electromagnetic Fields; Equipment Design; Humans; Hyperthermia, Induced; Models, Biological;
Journal_Title :
Biomedical Engineering, IEEE Transactions on