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一个侧重于静脉系统的人体循环全球多尺度数学模型。

A global multiscale mathematical model for the human circulation with emphasis on the venous system.

作者信息

Müller Lucas O, Toro Eleuterio F

机构信息

Laboratory of Applied Mathematics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, I-38100, Trento, Italy.

出版信息

Int J Numer Method Biomed Eng. 2014 Jul;30(7):681-725. doi: 10.1002/cnm.2622. Epub 2014 Jan 15.

Abstract

We present a global, closed-loop, multiscale mathematical model for the human circulation including the arterial system, the venous system, the heart, the pulmonary circulation and the microcirculation. A distinctive feature of our model is the detailed description of the venous system, particularly for intracranial and extracranial veins. Medium to large vessels are described by one-dimensional hyperbolic systems while the rest of the components are described by zero-dimensional models represented by differential-algebraic equations. Robust, high-order accurate numerical methodology is implemented for solving the hyperbolic equations, which are adopted from a recent reformulation that includes variable material properties. Because of the large intersubject variability of the venous system, we perform a patient-specific characterization of major veins of the head and neck using MRI data. Computational results are carefully validated using published data for the arterial system and most regions of the venous system. For head and neck veins, validation is carried out through a detailed comparison of simulation results against patient-specific phase-contrast MRI flow quantification data. A merit of our model is its global, closed-loop character; the imposition of highly artificial boundary conditions is avoided. Applications in mind include a vast range of medical conditions. Of particular interest is the study of some neurodegenerative diseases, whose venous haemodynamic connection has recently been identified by medical researchers.

摘要

我们提出了一个针对人体循环系统的全局、闭环、多尺度数学模型,该模型涵盖动脉系统、静脉系统、心脏、肺循环和微循环。我们模型的一个显著特点是对静脉系统进行了详细描述,特别是对颅内和颅外静脉的描述。中到大血管由一维双曲系统描述,而其余组件由微分代数方程表示的零维模型描述。采用了稳健的高阶精确数值方法来求解双曲方程,这些方程源自最近包含可变材料特性的重新表述。由于静脉系统个体间差异较大,我们使用MRI数据对头部和颈部的主要静脉进行了患者特异性表征。计算结果通过已发表的动脉系统和静脉系统大多数区域的数据进行了仔细验证。对于头颈部静脉,通过将模拟结果与患者特异性相位对比MRI血流定量数据进行详细比较来进行验证。我们模型的一个优点是其全局闭环特性;避免了施加高度人为的边界条件。该模型的应用涵盖了广泛的医学病症。特别令人感兴趣的是对一些神经退行性疾病的研究,医学研究人员最近已经确定了这些疾病与静脉血流动力学的联系。

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