Literature DB >> 6501027

Mean airway pressure and alveolar pressure during high-frequency ventilation.

B A Simon, G G Weinmann, W Mitzner.   

Abstract

Studies and applications of high-frequency ventilation (HFV) are often performed under conditions of controlled mean airway pressure (Paw). In the present study we tested the assumption that controlling Paw adequately controls lung volume during HFV by investigating the relationship between a reliably measured Paw and the mean alveolar pressure (Palv) of the lungs during HFV of healthy dogs. We minimized the errors of Paw measurement due to the Bernoulli effect and various technical factors by appropriate choice of transducers, amplifiers, and measurement site. Palv was estimated by clamping the ventilator tube during oscillation and measuring the equilibration pressure of the lung and airways. Paw and Palv were determined as functions of frequency (8-25 Hz), tidal volume (60-90 ml), Paw (-5 to 12 cmH2O), and position of the animal (supine vs. lateral). We found that Paw could significantly underestimate Palv and that the degree of underestimation increased at higher frequencies, larger tidal volumes, and lower Paw. Shifting the animal from the supine to the lateral position greatly accentuated this effect. The elevation of Palv above Paw was seen to be a function of mean flow and largely independent of the frequency-tidal volume combination which produced the flow. A possible explanation of this pressure difference is that it results from differences in inspiratory and expiratory airway impedances, which in turn depend on airway geometry, compliance, lung volume, and expiratory flow limitation.

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Year:  1984        PMID: 6501027     DOI: 10.1152/jappl.1984.57.4.1069

Source DB:  PubMed          Journal:  J Appl Physiol Respir Environ Exerc Physiol        ISSN: 0161-7567


  21 in total

1.  Dynamic lung inflation during high frequency oscillation in neonates.

Authors:  E W Hoskyns; A D Milner; I E Hopkin
Journal:  Eur J Pediatr       Date:  1992-11       Impact factor: 3.183

2.  Tracheobronchial dilating effect of high frequency jet ventilation.

Authors:  H Toyooka; K Amaha; K Yokoyama
Journal:  J Anesth       Date:  1990-07       Impact factor: 2.078

3.  Pneumomediastinum due to high-frequency jet ventilation in a near-drowned infant.

Authors:  M Aibiki; Y Shirakawa; K Ogli; T Uefuji; Y Tosaki; S Yokono; H Komatsu; A Yokono
Journal:  J Anesth       Date:  1988-09-01       Impact factor: 2.078

4.  Airway pressure and transpulmonary pressure during high-frequency oscillation for acute respiratory distress syndrome.

Authors:  William R Henderson; Paolo B Dominelli; Donald E G Griesdale; Daniel Talmor; A William Sheel
Journal:  Can Respir J       Date:  2013-10-17       Impact factor: 2.409

5.  High frequency ventilation.

Authors:  A S Slutsky
Journal:  Intensive Care Med       Date:  1991       Impact factor: 17.440

6.  Alveolar pressure during high-frequency jet ventilation.

Authors:  A J van Vught; A Versprille; J R Jansen
Journal:  Intensive Care Med       Date:  1990       Impact factor: 17.440

7.  Suppression of spontaneous breathing during high-frequency jet ventilation. Influence of dynamic changes and static levels of lung stretch.

Authors:  A J van Vught; A Versprille; J R Jansen
Journal:  Intensive Care Med       Date:  1986       Impact factor: 17.440

8.  Determinants of oxygenation during high frequency oscillation.

Authors:  V Chan; A Greenough
Journal:  Eur J Pediatr       Date:  1993-04       Impact factor: 3.183

9.  Total and regional lung volume changes during high-frequency oscillatory ventilation (HFOV) of the normal lung.

Authors:  R Blaine Easley; Christopher T Lancaster; Matthew K Fuld; Jason W Custer; David N Hager; David W Kaczka; Brett A Simon
Journal:  Respir Physiol Neurobiol       Date:  2008-10-18       Impact factor: 1.931

10.  High-frequency ventilation (HFV) in hyaline membrane disease--a preliminary report.

Authors:  J Pfenninger; A C Gerber
Journal:  Intensive Care Med       Date:  1987       Impact factor: 17.440

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