Liu C H, Niranjan S C, Clark J W, San K Y, Zwischenberger J B, Bidani A
Department of Chemical Engineering, University of Texas Medical Branch, Galveston, Texas 77555, USA.
J Appl Physiol (1985). 1998 Apr;84(4):1447-69. doi: 10.1152/jappl.1998.84.4.1447.
A model integrating airway/lung mechanics, pulmonary blood flow, and gas exchange for a normal human subject executing the forced vital capacity (FVC) maneuver is presented. It requires as input the intrapleural pressure measured during the maneuver. Selected model-generated output variables are compared against measured data (flow at the mouth, change in lung volume, and expired O2 and CO2 concentrations at the mouth). A nonlinear parameter-estimation algorithm is employed to vary selected sensitive model parameters to obtain reasonable least squares fits to the data. This study indicates that 1) all three components of the respiratory model are necessary to characterize the FVC maneuver; 2) changes in pulmonary blood flow rate are associated with changes in alveolar and intrapleural pressures and affect gas exchange and the time course of expired gas concentrations; and 3) a collapsible midairway segment must be included to match airflow during a forced expiration. Model simulations suggest that the resistances to airflow offered by the collapsible segment and the small airways are significant throughout forced expiration; their combined effect is needed to adequately match the inspiratory and expiratory flow-volume loops. Despite the limitations of this lumped single-compartment model, a remarkable agreement with airflow and expired gas concentration measurements is obtained for normal subjects. Furthermore, the model provides insight into the important dynamic interactions between ventilation and perfusion during the FVC maneuver.
本文提出了一个整合气道/肺力学、肺血流量和气体交换的模型,用于模拟正常人体执行用力肺活量(FVC)动作的过程。该模型需要输入动作过程中测量的胸膜腔内压。将模型生成的选定输出变量与测量数据(口腔气流、肺容积变化以及口腔呼出的氧气和二氧化碳浓度)进行比较。采用非线性参数估计算法来改变选定的敏感模型参数,以获得与数据合理的最小二乘拟合。本研究表明:1)呼吸模型的所有三个组成部分对于表征FVC动作都是必要的;2)肺血流速率的变化与肺泡压和胸膜腔内压的变化相关,并影响气体交换和呼出气体浓度的时间进程;3)必须纳入一个可塌陷的气道中段以匹配用力呼气期间的气流。模型模拟表明,在整个用力呼气过程中,可塌陷段和小气道对气流的阻力都很显著;需要它们的综合作用才能充分匹配吸气和呼气流量-容积环。尽管这个集总单室模型存在局限性,但对于正常受试者,该模型与气流和呼出气体浓度测量结果仍有显著的一致性。此外,该模型为FVC动作期间通气与灌注之间重要的动态相互作用提供了见解。