• DocumentCode
    113076
  • Title

    Numerical Analysis of Electromagnetically Induced Heating and Bioheat Transfer for Magnetic Fluid Hyperthermia

  • Author

    Lei Wu ; Jingjing Cheng ; Wenzhong Liu ; Xiangguang Chen

  • Author_Institution
    Sch. of Chem. Eng. & Environ., Beijing Inst. of Technol., Beijing, China
  • Volume
    51
  • Issue
    2
  • fYear
    2015
  • fDate
    Feb. 2015
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    In this paper, we study the computational modeling of electromagnetically induced heating in magnetic fluid hyperthermia. Owing to the Brownian rotation and Neel relaxation of induced magnetic moments, ferrofluids can generate heat when exposed to an alternating current magnetic field. To destroy all tumors cells while preventing deleterious physiological responses, input parameters such as the frequency and intensity of magnetic fields and the complex susceptibility of ferrofluids should be determined precisely. In this paper, a solution to Maxwell´s equation for a model of a tumor and its neighboring tissues are coupled as input to Penne´s bioheat equation. Both sets of equations are solved using the finite element analysis method with perfectly matched layers for isothermal boundary conditions in COMSOL. We use a bilayered spherical model with blood perfusion and metabolism to simulate the temperature distribution in tumor regions during hyperthermia therapy. Power density due to electromagnetic field simulation serves as input to the bioheat transfer equation and determines the heat generated by the ferrofluids. The obtained results indicate that tumor regions are heated without adversely affecting healthy regions.
  • Keywords
    Brownian motion; Maxwell equations; finite element analysis; haemorheology; heat transfer; hyperthermia; magnetic fluids; magnetic moments; magnetic susceptibility; temperature distribution; tumours; Brownian rotation; COMSOL; Maxwell equation; Neel relaxation; Penne´s bioheat equation; alternating current magnetic field; bilayered spherical model; bioheat transfer equation; blood perfusion; complex ferrofluid susceptibility; electromagnetic field simulation; electromagnetically induced heating; finite element analysis; hyperthermia therapy; induced magnetic moments; input parameters; isothermal boundary conditions; magnetic field frequency; magnetic field intensity; magnetic fluid hyperthermia; metabolism; neighboring tissues; numerical analysis; perfectly matched layers; physiological responses; power density; temperature distribution; tumor cells; Equations; Heating; Hyperthermia; Mathematical model; Nanoparticles; Temperature distribution; Tumors; AC magnetic field; bilayered spherical mode; bioheat equation; finite element analysis (FEA); magnetic fluid hyperthermia;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2014.2358268
  • Filename
    7067491