DocumentCode :
1119347
Title :
Measurement of Specific Absorption Rate and Thermal Simulation for Arterial Embolization Hyperthermia in the Maghemite-Gelled Model
Author :
Xu, Ruizhi ; Zhang, Yu ; Ma, Ming ; Xia, Jingguang ; Liu, Jiwei ; Guo, Quanzhong ; Gu, Ning
Author_Institution :
Dept. of Biol. Sci. & Med. Eng., Southeast Univ., Nanjing
Volume :
43
Issue :
3
fYear :
2007
fDate :
3/1/2007 12:00:00 AM
Firstpage :
1078
Lastpage :
1085
Abstract :
Theoretical models are designed to be applied in hyperthermia treatment planning and to help optimize the surgical treatment procedures. However, it is difficult to obtain every physical parameter of the magnetic field in the living tissue in detail, which is necessary for the calculation. We therefore investigated the simulation of thermal distribution in arterial embolization hyperthermia (AEH) stimulated by the external ferrite-core applicator, and measured specific absorption rate (SAR) of magnetic nanoparticles in the maghemtite-gelled composite model. We used fiber optic temperature sensors (FOTS) to measure the values of SAR, which depend on the microstructure and sizes of particles and the intensity and frequency of external ac magnetic field. Detailed tests indicated that the attenuation of magnetic field was mainly focused on the vertical distance in the aperture of the apparatus. We built a simplified cylindrical phantom containing maghemite particles of 20 nm for thermal field simulation on the basis of SAR measurement. The results of simulation indicated that temperature elevation, induced by nanoparticles inside tumors under ac magnetic field, was dose-dependent. The temperature data acquired from the experiment were compatible with the theoretical results, which demonstrated that the current model considering the inhomogenous heat generation could provide accurate and reliable simulation results and a theoretical and technical basis for controlling temperature during AEH therapy
Keywords :
biomagnetism; blood vessels; fibre optic sensors; hyperthermia; iron compounds; nanobiotechnology; nanoparticles; phantoms; physiological models; surgery; temperature sensors; tumours; Fe2O3; arterial embolization hyperthermia; external ferrite-core applicator; fiber optic temperature sensors; inhomogenous heat generation; maghemite-gelled model; magnetic field; magnetic nanoparticles; microstructure; particle size; phantom; specific absorption rate; surgical treatment; thermal distribution simulation; tumors; Applicators; Design optimization; Embolization; Hyperthermia; Magnetic field measurement; Nanoparticles; Optical fibers; Particle measurements; Specific absorption rate; Surgery; Arterial embolization hyperthermia; maghemite particles; mathematical modeling; specific power absorption;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2006.888737
Filename :
4100816
Link To Document :
بازگشت