Bauernschmitt R, Schulz S, Schwarzhaupt A, Kiencke U, Vahl C F, Lange R, Hagl S
Department of Cardiac Surgery, University of Heidelberg, Germany.
Ann Thorac Surg. 1999 Mar;67(3):676-82. doi: 10.1016/s0003-4975(99)00046-6.
Replacing parts of the aorta with a non-compliant vascular prosthesis results in marked alterations of the aortic input impedance and influences arterial hemodynamics. We propose a mathematical model of circulation that can predict hemodynamic changes after simulation of vascular grafting.
A new mathematical model of the human arterial system was developed on a 75-MHz Pentium personal computer using Matlab software. The human arterial tree was delineated according to a 128-branch design encompassing bifurcations and physical properties of the arterial wall. A digitized aortic flow wave was chosen as the input signal to the system. After determination of the modules of elasticity of native vascular tissue and standard prostheses in technical experiments, replacement of any part of the aorta with a prosthesis was simulated by increasing the elasticity in the parts desired.
During control conditions, the model displayed a physiologic distribution of flow and pressure waves throughout the arterial system. Simulated replacement of the aorta resulted in an increase in pressure amplitude and a partial loss of the aortic "Windkessel" function. Calculation of the aortic input impedance showed an increase in the characteristic impedance, whereas the peripheral resistance remained unaltered.
This mathematical model of the arterial circulation is useful for simulating hemodynamic changes after implantation of vascular grafts. The results of the model analysis are consistent with those in previous experimental work.
用顺应性差的血管假体替换主动脉的部分会导致主动脉输入阻抗发生显著改变,并影响动脉血流动力学。我们提出一种循环数学模型,该模型能够在模拟血管移植后预测血流动力学变化。
使用Matlab软件在一台75兆赫奔腾个人计算机上开发了一种新的人体动脉系统数学模型。根据包含动脉壁分支和物理特性的128分支设计描绘人体动脉树。选择数字化的主动脉血流波作为系统的输入信号。在技术实验中确定天然血管组织和标准假体的弹性模量后,通过增加所需部位的弹性来模拟用假体替换主动脉的任何部分。
在对照条件下,该模型在整个动脉系统中显示出流量和压力波的生理分布。模拟的主动脉置换导致压力振幅增加和主动脉“风箱”功能部分丧失。主动脉输入阻抗的计算显示特征阻抗增加,而外周阻力保持不变。
这种动脉循环数学模型有助于模拟血管移植植入后的血流动力学变化。模型分析结果与先前实验工作的结果一致。