Title :
Determination of electromagnetic phased-array driving signals for hyperthermia based on a steady-state temperature criterion
Author :
Kowalski, Marc E. ; Jin, Jian-Ming
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fDate :
11/1/2000 12:00:00 AM
Abstract :
Electromagnetic phased arrays can be used to preferentially heat tumors, potentially providing clinical benefit in oncological applications. Synthesizing a temperature field that exposes cancerous cells to sufficiently elevated temperatures, while not harming healthy cells is not a trivial problem, and can often be assisted by the use of computational models of the patient. In this paper, a method for determining phased-array driving signals that result in a clinically favorable temperature distribution is presented. It Is shown by example that simply focusing the power deposited over the tumor is not sufficient to guarantee that the peak temperature elevation occurs in the tumor in biological media. To remedy this, the temperature is predicted by a simple computational model and directly optimized as a function of the phased-array driving signals. To facilitate this optimization, superposition principles are used for both the electromagnetic and thermal models to minimize the number of computationally Intensive forward problems that must be solved.
Keywords :
antenna phased arrays; hyperthermia; modelling; optimisation; radiofrequency heating; temperature distribution; tumours; biological media; clinically favorable temperature distribution; computational models; computationally Intensive forward problems; electromagnetic phased-array driving signals determination; healthy cells; peak temperature elevation; phased-array driving signals; preferential tumor heating; steady-state temperature criterion; superposition principles; thermal model; Biological system modeling; Biology computing; Computational modeling; Electromagnetic heating; Hyperthermia; Neoplasms; Phased arrays; Quantum computing; Steady-state; Temperature;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on