Obtaining source current density related to irregularly structured electromagnetic target field inside human body using hybrid inverse/FDTD method

Jijun Han*, Deqiang Yang, Houjun Sun, Sherman Xuegang Xin

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Inverse method is inherently suitable for calculating the distribution of source current density related with an irregularly structured electromagnetic target field. However, the present form of inverse method cannot calculate complex field–tissue interactions. A novel hybrid inverse/finite-difference time domain (FDTD) method that can calculate the complex field–tissue interactions for the inverse design of source current density related with an irregularly structured electromagnetic target field is proposed. A Huygens’ equivalent surface is established as a bridge to combine the inverse and FDTD method. Distribution of the radiofrequency (RF) magnetic field on the Huygens’ equivalent surface is obtained using the FDTD method by considering the complex field–tissue interactions within the human body model. The obtained magnetic field distributed on the Huygens’ equivalent surface is regarded as the next target. The current density on the designated source surface is derived using the inverse method. The homogeneity of target magnetic field and specific energy absorption rate are calculated to verify the proposed method.

Original languageEnglish
Pages (from-to)169-176
Number of pages8
JournalElectromagnetic Biology and Medicine
Volume36
Issue number2
DOIs
Publication statusPublished - 3 Apr 2017

Keywords

  • Huygens’ equivalent surface
  • Inverse method
  • field–tissue interactions
  • finite-difference time domain method
  • specific energy absorption rate

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