SIMULATION OF THE EFFECTS OF MECHANICAL NONHOMOGENEITIES ON EXPIRATORY FLOW FROM HUMAN LUNGS

被引:6
作者
LAMBERT, RK
机构
关键词
choke point; density dependence; mathematical model; maximum expiratory flow volume; partial expiratory flow volume; steady flow;
D O I
10.1152/jappl.1990.68.6.2550
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
A computational model for expiration from lungs with mechanical nonhomogeneities was used to investigate the effect of such nonhomogeneities on the distribution of expiratory flow and the development of alveolar pressure differences between regions. The nonhomogeneities used were a modest constriction of the peripheral airways and a 50% difference in compliance between regions. The model contains only two mechanically different regions but allows these to be as grossly distributed as left lung-right lung or to be distributed as a set of identical pairs of parallel nonhomogeneous regions with flows from each merging in a specified bronchial generation. The site of flow merging had no effect on the flow-volume curve but had a significant effect on the development of alveolar pressure differences (ΔPA). With the peripheral constriction, greater values of ΔPA developed when flows were merged peripherally rather than centrally. The opposite was true in the case of a compliance nonhomogeneity. The ΔPA values were smaller at submaximal flows. Plots of ΔPA vs. lung volume were similar to those obtained experimentally. These results were interpreted in terms of the expression used for the fluid mechanics of the merging flows. ΔPA was greater when the viscosity of the expired gas was increased or when its density was reduced. Partial forced expirations were shown to indicate the presence of mechanical nonhomogeneity.
引用
收藏
页码:2550 / 2563
页数:14
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