Theoretical Study of Inspiratory Flow Waveforms during Mechanical Ventilation on Pulmonary Blood Flow and Gas Exchange

S.C. Niranjan , A. Bidani , F. Ghorbel , J.B. Zwischenberger , J.W. Clark Jr.
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引用次数: 10

Abstract

A lumped two-compartment mathematical model of respiratory mechanics incorporating gas exchange and pulmonary circulation is utilized to analyze the effects of square, descending and ascending inspiratory flow waveforms during mechanical ventilation. The effects on alveolar volume variation, alveolar pressure, airway pressure, gas exchange rate, and expired gas species concentration are evaluated. Advantages in ventilation employing a certain inspiratory flow profile are offset by corresponding reduction in perfusion rates, leading to marginal effects on net gas exchange rates. The descending profile provides better CO2 exchange, whereas the ascending profile is more advantageous for O2 exchange. Regional disparities in airway/lung properties create maldistribution of ventilation and a concomitant inequality in regional alveolar gas composition and gas exchange rates. When minute ventilation is maintained constant, for identical time constant disparities, inequalities in compliance yield pronounced effects on net gas exchange rates at low frequencies, whereas the adverse effects of inequalities in resistance are more pronounced at higher frequencies. Reduction in expiratory air flow (via increased airway resistance) reduces the magnitude of upstroke slope of capnogram and oxigram time courses without significantly affecting end-tidal expired gas compositions, whereas alterations in mechanical factors that result in increased gas exchanges rates yield increases in CO2 and decreases in O2 end-tidal composition values. The model provides a template for assessing the dynamics of cardiopulmonary interactions during mechanical ventilation by combining concurrent descriptions of ventilation, capillary perfusion, and gas exchange.

机械通气对肺血流和气体交换的吸入流波形的理论研究
利用包含气体交换和肺循环的呼吸力学集总双室数学模型,分析了机械通气过程中方形、下降和上升吸气流波形的影响。评估对肺泡容积变化、肺泡压力、气道压力、气体交换速率和过期气体浓度的影响。采用一定吸气流型的通风优势被相应的灌注率降低所抵消,导致净气体交换率的边际效应。下降剖面有利于CO2交换,而上升剖面有利于O2交换。气道/肺特性的区域差异造成通气的不均匀分布,并伴随区域肺泡气体组成和气体交换率的不平等。当微小通风量保持恒定时,对于相同的时间常数差异,顺应性的不平等在低频率下对净气体交换率产生显著影响,而阻力不平等的不利影响在高频率下更为明显。呼气气流的减少(通过气道阻力的增加)降低了钙图和氧图时间过程的上冲程斜率的大小,而不会显著影响潮末过期气体成分,而机械因素的改变导致气体交换率的增加,产生CO2增加和O2潮末组成值的减少。该模型通过结合通气、毛细血管灌注和气体交换的并发描述,为评估机械通气期间心肺相互作用的动态提供了模板。
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