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Vascular impedance analysis in human pulmonary circulation.

机译:人肺循环中的血管阻抗分析。

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Vascular impedance is determined by morphometry and mechanical properties of the vascular system, as well as the rheology of the blood. The interactions between all these factors are complicated and difficult to investigate solely by experiments. A mathematical model representing the entire system of human pulmonary circulation was constructed based on experimentally measured morphometric and elasticity data of the vessels. The model consisted of 16 orders of arteries and 15 orders of veins. The pulmonary arteries and veins were considered as elastic tubes and their impedance was calculated based on Womersley's theory. The flow in capillaries was described by the "sheet-flow" theory. The model yielded an impedance modulus spectrum that fell steeply from a high value at 0 Hz to a minimum around 1.5 Hz. At about 4 Hz, it reached a second high and then oscillated around a relatively small value at higher frequencies. Characteristic impedance was 27.9 dyn-sec/cm5. Influence of variations in vessel geometryand elasticity on impedance spectra was analyzed. Simulation results showed good agreement with experimental measurements.
机译:血管阻抗取决于血管系统的形态和机械性能,以及血液的流变性。所有这些因素之间的相互作用都很复杂,很难仅通过实验进行研究。基于实验测量的血管形态和弹性数据,构建了代表整个人类肺循环系统的数学模型。该模型由16阶动脉和15阶静脉组成。将肺动脉和静脉视为弹性管,并根据Womersley的理论计算其阻抗。毛细血管的流动用“薄板流动”理论描述。该模型产生的阻抗模量频谱从0 Hz的高值急剧下降到1.5 Hz左右的最小值。在大约4 Hz时,它达到了第二高,然后在较高的频率附近以相对较小的值振荡。特性阻抗为27.9 dyn-sec / cm5。分析了容器几何形状和弹性变化对阻抗谱的影响。仿真结果与实验测量结果吻合良好。

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