IEEE Trans Biomed Eng. 2020 Oct;67(10):2765-2772. doi: 10.1109/TBME.2020.2970607. Epub 2020 Jan 31.
Bioelectromagnetism focuses on the study of electromagnetic fields in biological tissues from direct current (DC) to optical frequencies. It is challenging to develop an electromagnetics (EM) simulation method to cover this entire frequency band due to the electrically small/large scattering problem at extremely low/high frequencies. This paper focuses on the band from DC to microwave frequencies in bioelectromagnetism. Its main research objective is to develop a method that can overcome the low frequency breakdown problem at low frequencies (practically DC) and still stay stable at microwave frequencies. Based on the scattered field vector Helmholtz equation, the mixed finite element method (mixed FEM) is developed for the broadband electromagnetic field simulation in biological tissues. By imposing Gauss' law as the constraint condition, the mixed FEM overcomes the low frequency breakdown problem without resorting to the quasi-static approximation and remains effective and accurate at high frequencies. Extremely low frequency and high frequency numerical results are demonstrated to verify that the mixed FEM is a stable full-wave electromagnetic field simulation method for the full-bandwidth bioelectromagnetism.
生物电磁学专注于研究从直流电 (DC) 到光频率的生物组织中的电磁场。由于在极低/高频率下存在电小/电大散射问题,因此开发一种能够涵盖整个频带的电磁 (EM) 模拟方法具有挑战性。本文专注于生物电磁学中从直流到微波频率的频段。其主要研究目标是开发一种方法,该方法可以克服低频(实际上是直流)下的低频击穿问题,并且在微波频率下仍然保持稳定。基于散射场矢量亥姆霍兹方程,为生物组织中的宽带电磁场模拟开发了混合有限元法 (mixed FEM)。通过施加高斯定律作为约束条件,混合有限元法克服了低频击穿问题,而无需采用准静态近似,并且在高频下仍然有效和准确。极低频率和高频数值结果证明了混合有限元法是一种用于全带宽生物电磁学的稳定全波电磁场模拟方法。