Tanzer I Oğuz, Järvenpää Seppo, Nenonen Jukka, Somersalo Erkki
Laboratory of Biomedical Engineering, PO Box 2200, 02015 HUT and BioMag Laboratory, Medical Engineering Center, Finland.
Phys Med Biol. 2005 Jul 7;50(13):3023-39. doi: 10.1088/0031-9155/50/13/004. Epub 2005 Jun 8.
Bioelectric current sources of magneto- and electroencephalograms (MEG, EEG) are usually modelled with discrete delta-function type current dipoles, despite the fact that the currents in the brain are naturally continuous throughout the neuronal tissue. In this study, we represent bioelectric current sources in terms of Whitney-type elements in the finite element method (FEM) using a tetrahedral mesh. The aim is to study how well the Whitney elements can reproduce the potential and magnetic field patterns generated by a point current dipole in a homogeneous conducting sphere. The electric potential is solved for a unit sphere model with isotropic conductivity and magnetic fields are calculated for points located on a cap outside the sphere. The computed potential and magnetic field are compared with analytical solutions for a current dipole. Relative difference measures between the FEM and analytical solutions are less than 1%, suggesting that Whitney elements as bioelectric current sources are able to produce the same potential and magnetic field patterns as the point dipole sources.
尽管大脑中的电流在整个神经元组织中自然是连续的,但磁脑电图(MEG,EEG)的生物电流源通常用离散的δ函数型电流偶极子来建模。在本研究中,我们在有限元方法(FEM)中使用四面体网格,用惠特尼型单元来表示生物电流源。目的是研究惠特尼单元能多好地再现均匀导电球体内点电流偶极子产生的电位和磁场模式。针对具有各向同性电导率的单位球体模型求解电势,并计算位于球体外帽上各点的磁场。将计算得到的电势和磁场与电流偶极子的解析解进行比较。有限元法与解析解之间的相对差异测量值小于1%,这表明作为生物电流源的惠特尼单元能够产生与点偶极子源相同的电位和磁场模式。