A bidomain model based BEM-FEM coupling formulation for anisotropic cardiac tissue

被引:78
作者
Fischer, G
Tilg, B
Modre, R
Huiskamp, GJM
Fetzer, J
Rucker, W
Wach, P
机构
[1] Graz Tech Univ, Inst Biomed Engn, A-8010 Graz, Austria
[2] Univ Utrecht, Med Ctr, Dept Clin Neurophysiol, Utrecht, Netherlands
[3] Univ Stuttgart, Inst Theory Elect Engn, D-7000 Stuttgart, Germany
基金
奥地利科学基金会;
关键词
electrocardiography; forward problem; magnetocardiography; vortex sources;
D O I
10.1114/1.1318927
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A hybrid boundary element method (BEM)/finite element method (FEM) approach is proposed in order to properly consider the anisotropic properties of the cardiac muscle in the magneto- and electrocardiographic forward problem. Within the anisotropic myocardium a bidomain model based FEM formulation is applied. In the surrounding isotropic volume conductor the BEM is adopted. Coupling is enabled by requesting continuity of the electric potential and the normal of the current density across the boundary of the heart. Here, the BEM part is coupled as an equivalent finite element to the finite element stiffness matrix, thus preserving in part its sparse property. First, continuous convergence of the coupling scheme is shown for a spherical model comparing the computed results to an analytic reference solution. Then, the method is extended to the depolarization phase in a fibrous model of a dog ventricle. A precomputed activation sequence obtained using a fine mesh of the heart was downsampled and used to calculate body surface potentials and extracorporal magnetic fields considering the anisotropic bidomain conductivities. Results are compared to those obtained by neglecting in part or totally (oblique or uniform dipole layer model) anisotropic properties. The relatively large errors computed indicate that the cardiac muscle is one of the major torso inhomogeneities. (C) 2000 Biomedical Engineering Society. [S0090-6964(00)00810-9].
引用
收藏
页码:1229 / 1243
页数:15
相关论文
共 39 条
[1]   An admissible solution approach to inverse electrocardiography [J].
Ahmad, GF ;
Brooks, DH ;
MacLeod, RS .
ANNALS OF BIOMEDICAL ENGINEERING, 1998, 26 (02) :278-292
[2]  
[Anonymous], 1969, BIOMAGNETIC PHENOMEN
[3]   Effective epicardial resistance of rabbit ventricles [J].
Baynham, TC ;
Knisley, SB .
ANNALS OF BIOMEDICAL ENGINEERING, 1999, 27 (01) :96-102
[4]  
Beer G, 1992, INTRO FINITE BOUNDAR
[5]   Geometric modeling of the human torso using cubic hermite elements [J].
Bradley, CP ;
Pullan, AJ ;
Hunter, PJ .
ANNALS OF BIOMEDICAL ENGINEERING, 1997, 25 (01) :96-111
[6]   Magnetocardiography and 32-lead potential mapping: Repolarization in normal subjects during pharmacologically induced stress [J].
Brockmeier, K ;
Schmitz, L ;
Chavez, JB ;
Burghoff, M ;
Koch, H ;
Zimmermann, R ;
Trahms, L .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 1997, 8 (06) :615-626
[7]   Spread of excitation in 3-D models of the anisotropic cardiac tissue. III. Effects of ventricular geometry and fiber structure on the potential distribution [J].
Colli-Franzone, P ;
Guerri, L ;
Pennacchio, M ;
Taccardi, B .
MATHEMATICAL BIOSCIENCES, 1998, 151 (01) :51-98
[8]   POTENTIAL FIELDS GENERATED BY OBLIQUE DIPOLE LAYERS MODELING EXCITATION WAVEFRONTS IN THE ANISOTROPIC MYOCARDIUM - COMPARISON WITH POTENTIAL FIELDS ELICITED BY PACED DOG HEARTS IN A VOLUME CONDUCTOR [J].
COLLI-FRANZONE, P ;
GUERRI, L ;
VIGANOTTI, C ;
MACCHI, E ;
BARUFFI, S ;
SPAGGIARI, S ;
TACCARDI, B .
CIRCULATION RESEARCH, 1982, 51 (03) :330-346
[9]   On the contribution of volume currents to the total magnetic field resulting from the heart excitation process: A simulation study [J].
Czapski, P ;
Ramon, C ;
Huntsman, LL ;
Bardy, GH ;
Kim, Y .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1996, 43 (01) :95-104
[10]   Comparison of analytical and numerical integration techniques for the boundary integrals in the BEM-FEM coupling considering TEAM workshop problem no 13 [J].
Fetzer, J ;
Kurz, S ;
Lehner, G .
IEEE TRANSACTIONS ON MAGNETICS, 1997, 33 (02) :1227-1230