Liehr Mario, Haueisen Jens
Department of Internal Medicine I, University Jena, Germany.
Phys Med Biol. 2008 Jan 7;53(1):245-54. doi: 10.1088/0031-9155/53/1/017. Epub 2007 Dec 19.
The purpose of this study is the analysis of the influence of anisotropic conductivity on magnetic fields and electric potentials by means of phantom measurements. An artificial rotating current dipole was placed in the middle of an anisotropic skein arrangement in a torso phantom filled with saline solution. The signal strength and the change of the shape of potential and field patterns due to anisotropic volume conduction were investigated. Different directions of the dipole were compared to corresponding orientations of measured fields and potentials (angle difference). For electric and magnetic data, the angle difference between observed signal orientations and true dipole orientations continuously increased with the angle between dipole and anisotropy (up to 80 degrees ) and then decreased back to zero at their orthogonal orientation. Both signal strengths decreased about 10% with an increasing angle between dipole and anisotropy. While the magnetic field showed a generally stronger shape change, the changed shape of the electric potential showed similarity to an extended source. Our phantom study demonstrated that anisotropic compartments influence directions, amplitudes and shapes of potentials and fields at different degrees. We concluded that anisotropic structures should be considered in volume conductor modelling, when source orientation, extension and strength are of interest.
本研究的目的是通过模型测量分析各向异性电导率对磁场和电势的影响。将一个人工旋转电流偶极子置于充满盐溶液的躯干模型中各向异性绞合结构的中间位置。研究了由于各向异性体积传导导致的信号强度以及电势和场模式形状的变化。将偶极子的不同方向与测量场和电势的相应方向进行比较(角度差)。对于电数据和磁数据,观测信号方向与真实偶极子方向之间的角度差随着偶极子与各向异性之间的夹角(最大到80度)不断增大,然后在它们正交方向时减小回到零。随着偶极子与各向异性之间夹角的增大,两种信号强度均下降约10%。虽然磁场显示出总体上更强的形状变化,但电势的变化形状与扩展源相似。我们的模型研究表明,各向异性隔室对电势和场的方向、幅度和形状有不同程度的影响。我们得出结论,当关注源的方向、范围和强度时,在体积导体建模中应考虑各向异性结构。