A Dynamic Morphometric Model of the Normal Lung for Studying Expiratory Flow Limitation in Mechanical Ventilation

被引:0
作者
Paolo Barbini
Chiara Brighenti
Gabriele Cevenini
Gianni Gnudi
机构
[1] Università di Siena,Dipartimento di Chirurgia e Bioingegneria
[2] Università di Bologna,Dipartimento di Elettronica, Informatica e Sistemistica
[3] Università di Bologna,Dipartimento di Elettronica, Informatica e Sistemistica
来源
Annals of Biomedical Engineering | 2005年 / 33卷
关键词
Lung mechanics; Nonlinear morphometric model; Dynamic conditions; Expiratory flow limitation; Mechanical ventilation;
D O I
暂无
中图分类号
学科分类号
摘要
A nonlinear dynamic morphometric model of breathing mechanics during artificial ventilation is described. On the basis of the Weibel symmetrical representation of the tracheobronchial tree, the model accurately accounts for the geometrical and mechanical characteristics of the conductive zone and packs the respiratory zone into a viscoelastic Voigt body. The model also accounts for the main mechanisms limiting expiratory flow (wave speed limitation and viscous flow limitation), in order to reproduce satisfactorily, under dynamic conditions, the expiratory flow limitation phenomenon occurring in normal subjects when the difference between alveolar pressure and tracheal pressure (driving pressure) is high. Several expirations characterized by different levels of driving pressure are simulated and expiratory flow limitation is detected by plotting the isovolume pressure–flow curves. The model is used to study the time course of resistance and total cross-sectional area as well as the ratio of fluid velocity to wave speed (speed index), in conductive airway generations. The results highlight that the coupling between dissipative pressure losses and airway compliance leads to onset of expiratory flow limitation in normal lungs when driving pressure is increased significantly by applying a subatmospheric pressure to the outlet of the ventilator expiratory channel; wave speed limitation becomes predominant at still higher driving pressures.
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页码:518 / 530
页数:12
相关论文
共 117 条
[1]  
Avanzolini G.(1984)A versatile identification method applied to analysis of respiratory mechanics IEEE Trans. Biomed. Eng. 31 520-526
[2]  
Barbini P.(2003)Nonlinear mechanisms determining expiratory flow limitation in mechanical ventilation: A model-based interpretation Ann. Biomed. Eng. 31 908-916
[3]  
Barbini P.(2001)Effect of compliant intermediate airways on total respiratory resistance and elastance in mechanical ventilation Med. Eng. Phys. 23 185-194
[4]  
Cevenini G.(1994)Estimating respiratory mechanical parameters of ventilated patients: A critical study in the routine intensive-care unit Med. Biol. Eng. Comput. 32 153-160
[5]  
Avanzolini G.(1977)Wave-speed limitation on expiratory flow—A unifying concept J. Appl. Physiol. 43 498-515
[6]  
Barbini P.(1989)Respiratory mechanics in anaesthetized paralysed humans: Effects of flow, volume and time J. Appl. Physiol. 67 2556-2564
[7]  
Cevenini G.(1987)Choking phenomena in a lung-like model J. Biomech. Eng. 109 1-9
[8]  
Bernardi F.(1993)Dynamic model of the bronchial tree J. Biomed. Eng. 15 283-288
[9]  
Massai M. R.(1971)Models of the human bronchial tree J. Appl. Physiol. 31 207-217
[10]  
Gnudi G.(1972)Effect of lung inflation on bronchial length and diameter in excised lungs J. Appl. Physiol. 32 25-35