人体全身循环和全球循环分析方法

F. E. Nzerem, Eucharia C. Nwachukwu
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摘要

摘要人体循环系统是大自然令人赞叹的节律之一。心脏和脉管系统是组成结构。血管系统由动脉和静脉附属物组成,这些附属物被安排在一个能够促进循环的理想网络中。这项研究的关键是心血管系统作为一个网络的表示,其中电约束适用。作为一个网络,该系统可以进行图分析处理;随着边节点参数的产生,拓扑约束也随之产生。由于心脏的自节律性,电脉冲通过血管传递到身体细胞。一般来说,这些血管必须引起一点阻力。这项工作武器化的图论和电学性质的元素在阐明与心血管系统相关的流动机制。通过矩阵的方法仔细地描绘和分析了连接容器(理想化为导线)上的电压降。当心脏功能在生理定义范围内时,在血液循环不良的情况下,血管室可能是一种危险因素。因此,这项工作所描绘的血管阻力能力的知识是评估所考虑的系统流动完整性的必要条件。MSC 2010号: 05c21, 92c42, 92b25。关键词:心血管,网络,矩阵,流,电路,边和节点,波传播,分岔。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical Method of Human Systemic and Global Circulation
Abstract The human circulatory system is one of the admirable rhythms of nature. The heart and the vasculature are constitutive structures. The vasculature consists of arterial and venous appurtenances which are arranged in an idealized network capable of enhancing circulation. The crux of this study is the representation of the cardiovascular system as a network in which electrical constraints apply. As a network, the system is amenable to graph analytic treatment; as edge-nodal parameters ensue, topological constraints apply. In virtue of cardiac auto-rhythmicity, electrical impulses are driven through the vessels to the body cells. As a rule, the vessels must elicit a modicum of resistance. This work weaponized the elements of graph theory and electrical properties of the heart in elucidating the flow mechanism associated with the cardio-vascular system. The voltage drop across the connecting vessels (idealized as wires) was carefully depicted and analyzed by the method of matrices. When the cardiac function is within physiological definition a vascular compartment may be a liability in the event of poor circulation. Therefore the knowledge of vascular resistive capacities, which this work portrayed, is a sine-qua-non to the assessment of flow integrity of the system under consideration. MSC 2010 No.: 05C21, 92C42, 92B25. Keywords: Cardiovascular, Network, Matrices, Flow, Circuit, Edges and Nodes, Wave propagation, Bifurcation.
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