• DocumentCode
    54369
  • Title

    FEM Optimization of Energy Density in Tumor Hyperthermia Using Time-Dependent Magnetic Nanoparticle Power Dissipation

  • Author

    Koch, Caleb Maxwel ; Winfrey, A.L.

  • Author_Institution
    Dept. of Eng. Sci. & Mech., Virginia Polytech. Inst. & State Univ., Blacksburg, VA, USA
  • Volume
    50
  • Issue
    10
  • fYear
    2014
  • fDate
    Oct. 2014
  • Firstpage
    1
  • Lastpage
    7
  • Abstract
    General principles are developed using a finite element model regarding how time-dependent power dissipation of magnetic nanoparticles can be used to optimize hyperthermia selectivity. To make the simulation more realistic, the finite size and spatial location of each individual nanoparticle is taken into consideration. When energy input into the system and duration of treatment is held constant, increasing the maximum power dissipation of nanoparticles increases concentrations of energy in the tumor. Furthermore, when the power dissipation of magnetic nanoparticles rises linearly, the temperature gradient on the edge of the tumor increases exponentially. With energy input held constant, the location and duration of maximum power dissipation in the treatment time scheme will affect the final energy concentration inside the tumor. Finally, connections are made between the simulation results and optimization of the design of nanoparticle power dissipation time-schemes for hyperthermia.
  • Keywords
    finite element analysis; hyperthermia; magnetic particles; nanomagnetics; nanomedicine; nanoparticles; patient treatment; tumours; energy concentrations; energy density; energy input; finite element model optimization; finite size; hyperthermia selectivity; maximum power dissipation duration; maximum power dissipation location; spatial location; temperature gradient; time-dependent magnetic nanoparticle power dissipation; treatment time scheme; tumor hyperthermia; Finite element analysis; Heating; Hyperthermia; Mathematical model; Nanoparticles; Power dissipation; Tumors; Hyperthermia optimization; finite-element modeling; magnetic nanoparticles; treatment planning;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2014.2331031
  • Filename
    6835180