论文标题
新的宏观双域模型的推导,包括心脏组织电活动的三个量表
Derivation of a new macroscopic bidomain model including three scales for the electrical activity of cardiac tissue
论文作者
论文摘要
在本文中,提出了一种新的三尺度渐近均质化方法来研究心脏组织结构的电行为,具有两个不同水平的多个异质性。第一级与介观结构有关,因此心脏组织由细胞外和细胞内结构域组成。第二级与微观结构有关,以这种方式仅可将细胞内培养基视为单位细胞的周期布局(线粒体)。然后,我们定义了两种局部细胞,这些细胞是通过升级方法获得的。均质化方法基于功率序列扩展,该扩展允许从每个结构水平的微观双域问题确定宏观(匀浆)双域模型。首先,我们使用两尺度的渐近扩张来匀浆细胞外问题。然后,我们在细胞内问题中应用三尺度的渐近扩张,以在两个级别上获得其均质方程。细胞内结构的第一个上降级水平产生介质方程,均质化的第二步导致获得细胞内均质方程。介质和微观信息都是通过均化来获得心脏组织结构内局部特征的。最后,我们获得了宏观双域模型,心脏结构域与细胞内培养基和细胞外培养基一致,它们是通过心脏细胞膜在每个点连接的两个跨渗透和叠加的连续性。所提出的方法的兴趣来自以下事实:它结合了微观和介观特征,以获得心脏电行为的宏观描述。
In the present paper, a new three-scale asymptotic homogenization method is proposed to study the electrical behavior of the cardiac tissue structure with multiple heterogeneities at two different levels. The first level is associated with the mesoscopic structure such that the cardiac tissue is composed of extracellular and intracellular domains. The second level is associated with the microscopic structure in such a way the intracellular medium can only be viewed as a periodical layout of unit cells (mitochondria). Then, we define two kinds of local cells that are obtained by upscaling methods. The homogenization method is based on a power series expansion which allows determining the macroscopic (homogenized) bidomain model from the microscopic bidomain problem at each structural level. First, we use the two-scale asymptotic expansion to homogenize the extracellular problem. Then, we apply a three-scale asymptotic expansion in the intracellular problem to obtain its homogenized equation at two levels. The first upscaling level of the intracellular structure yields the mesoscopic equation and the second step of the homogenization leads to obtain the intracellular homogenized equation. Both the mesoscopic and microscopic information is obtained by homogenization to capture local characteristics inside the cardiac tissue structure. Finally, we obtain the macroscopic bidomain model and the heart domain coincides with the intracellular medium and extracellular one, which are two inter-penetrating and superimposed continua connected at each point by the cardiac cellular membrane. The interest of the proposed method comes from the fact that it combines microscopic and mesoscopic characteristics to obtain a macroscopic description of the electrical behavior of the heart.