Title :
Induction Heating of Magnetic Fluids for Hyperthermia Treatment
Author :
Wang, Xufei ; Tang, Jintian ; Shi, Liqun
Author_Institution :
Inst. of Modern Phys., Fudan Univ., Shanghai, China
fDate :
4/1/2010 12:00:00 AM
Abstract :
The induction heating of magnetic fluids for magnetic induction hyperthermia treatments is theoretically analyzed, with regard to the influences by magnetic field parameters, material properties, and demagnetizing field effects in finite-size samples. A monodispersion model of noninteracting superparamagnetic particles, subjected to a magnetic field of the intensity hex < 16 kAm-1 and frequency f < 1 MHz, is used for the analysis. Calculation results show that the induction heating has a quasi-linear dependence on field intensity and a quasi-negative exponential dependence on field frequency. As for the influences by material parameters, respectively, the induction heating has a double-exponential-like dependence on the magnetic core size and a negative dependence on the coating layer thickness of the superparamagnetic particles. Similarly, the heating dependence on the carrier liquid viscosity is also a double-exponential-like relationship. Besides, the induction heating has a linear dependence on the volume fraction of the superparamagnetic particles, and a negative dependence on the demagnetizing factors, which are related to the sample shapes and orientations. Initial experiments are performed for validating the analytical calculation results.
Keywords :
biomagnetism; demagnetisation; electromagnetic induction; hyperthermia; induction heating; magnetic cores; magnetic fluids; magnetic particles; patient treatment; superparamagnetism; viscosity; carrier liquid viscosity; coating layer thickness; demagnetizing field effects; hyperthermia treatments; induction heating; magnetic core size; magnetic field parameters; magnetic fluids; magnetic induction; material properties; monodispersion model; noninteracting superparamagnetic particles; volume fraction; Hyperthermia; induction heating; magnetic liquids; magnetic losses; superparamagnetic particles;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2009.2038272