Krassowska W, Neu J C
Department of Biomedical Engineering, Duke University, Durham, NC 27706.
IEEE Trans Biomed Eng. 1994 Feb;41(2):143-50. doi: 10.1109/10.284925.
This study derives effective boundary conditions for potentials and currents on the interface between syncytial tissue and a surrounding volume conductor. The derivation is based on an idealized representation of the syncytium as a network of interconnected cells arranged periodically in space. The microscopic model of an interface assumes that the extracellular fluid is in direct contact with the outside volume conductor and that the inside of the cells is separated from the outside by the membrane. From this microscopic model, a homogenization process and boundary layer analysis derive effective boundary conditions applicable to macroscopic volume-averaged potentials. These effective boundary conditions call for the extracellular potential and current density to be continuous with the potential and current density in the volume conductor, and for the intracellular current to vanish. Hence, the long-debated appropriate boundary conditions for the bidomain model are established.
本研究推导了合胞体组织与周围容积导体界面上电位和电流的有效边界条件。该推导基于将合胞体理想化地表示为在空间中周期性排列的相互连接细胞网络。界面的微观模型假设细胞外液与外部容积导体直接接触,且细胞内部通过细胞膜与外部隔开。从这个微观模型出发,通过均匀化过程和边界层分析得出适用于宏观体积平均电位的有效边界条件。这些有效边界条件要求细胞外电位和电流密度与容积导体中的电位和电流密度连续,且细胞内电流消失。因此,建立了双域模型长期以来备受争议的合适边界条件。