DocumentCode
1134422
Title
Numerical Study on the Multi-Region Bio-Heat Equation to Model Magnetic Fluid Hyperthermia (MFH) Using Low Curie Temperature Nanoparticles
Author
Zhang, Chuanqian ; Johnson, Duane T. ; Brazel, Christopher S.
Author_Institution
Dept. of Chem. & Biol. Eng., Univ. of Alabama, Tuscaloosa, AL, USA
Volume
7
Issue
4
fYear
2008
Firstpage
267
Lastpage
275
Abstract
This study develops and solves two-dimensional convective-conductive coupled partial differential equations based on Pennes´ bio-heat transfer model using low Curie temperature nanoparticles (LCTNPs) to illustrate thermal behavior quantitatively within tumor-normal composite tissue by establishing a multi-region finite difference algorithm. The model combines Neel relaxation and temperature-variant saturation magnetization derived from Brillouin Equation and Curie-Weiss Law. The numerical results indicate that different deposition patterns of LCTNP and boundary conditions directly effect the steady state temperature distribution. Compared with high Curie temperature nanoparticles (HCTNPs), optimized distributions of LCTNPs within tumorous tissue can be used to control the temperature increase in tumors for hyperthermia treatment using an external magnetic field while healthy tissue surrounding a tumor can be kept closer to normal body tissue, reducing the side effects observed in whole body and regional hyperthermia therapy.
Keywords
biomedical materials; hyperthermia; magnetic field effects; nanobiotechnology; patient treatment; Brillouin equation; Pennes´ bio-heat transfer model; bio-heat equation; low Curie temperature; low curie temperature nanoparticles; magnetic fluid hyperthermia; multi-region finite difference algorithm; temperature-variant saturation magnetisation; thermal behavior; two-dimensional convective-conductive coupled partial differential equations; Boundary conditions; Finite difference methods; Hyperthermia; Magnetic liquids; Nanoparticles; Neoplasms; Partial differential equations; Saturation magnetization; Steady-state; Temperature distribution; Bio-heat equation; NÉel relaxation; finite difference algorithm; heat transfer; low Curie temperature nanoparticle; magnetic fluid hyperthermia; Animals; Body Temperature; Computer Simulation; Energy Transfer; Hot Temperature; Humans; Hyperthermia, Induced; Magnetics; Microfluidics; Models, Biological; Nanomedicine; Nanoparticles; Neoplasms; Therapy, Computer-Assisted; Thermodynamics;
fLanguage
English
Journal_Title
NanoBioscience, IEEE Transactions on
Publisher
ieee
ISSN
1536-1241
Type
jour
DOI
10.1109/TNB.2008.2011857
Filename
4769401
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