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Mechanics of respiratory system in healthy anesthetized humans with emphasis on viscoelastic properties

Jonson, B (author)
Lund University,Lunds universitet,Klinisk fysiologi, Lund,Sektion V,Institutionen för kliniska vetenskaper, Lund,Medicinska fakulteten,Clinical Physiology (Lund),Section V,Department of Clinical Sciences, Lund,Faculty of Medicine
Beydon, L (author)
Lund University
Brauer, K (author)
Lund University,Lunds universitet,Klinisk fysiologi, Lund,Sektion V,Institutionen för kliniska vetenskaper, Lund,Medicinska fakulteten,Clinical Physiology (Lund),Section V,Department of Clinical Sciences, Lund,Faculty of Medicine
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Månsson, C (author)
Lund University
Valind, S (author)
Lund University,Lunds universitet,Klinisk fysiologi och nuklearmedicin, Malmö,Forskargrupper vid Lunds universitet,Clinical Physiology and Nuclear Medicine, Malmö,Lund University Research Groups
Grytzell, H (author)
Lund University
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 (creator_code:org_t)
1993
1993
English 9 s.
In: Journal of Applied Physiology. - 8750-7587. ; 75:1, s. 40-132
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The classic model of the respiratory system (RS) is comprised of a Newtonian resistor in series with a capacitor and a viscoelastic unit including a resistor and a capacitor. The flow interruption technique has often been used to study the viscoelastic behavior under constant inspiratory flow rate. To study the viscoelastic behavior of the RS during complete respiratory cycles and to quantify viscoelastic resistance (Rve) and compliance (Cve) under unrestrained conditions, we developed an iterative technique based on a differential equation. We, as others, assumed Rve and Cve to be constant, which concords with volume and flow dependency of model behavior. During inspiration Newtonian resistance (R) was independent of flow and volume. During expiration R increased. Static elastic recoil showed no significant hysteresis. The viscoelastic behavior of the RS was in accordance with the model. The magnitude of Rve was 3.7 +/- 0.7 cmH2O.l-1 x s, i.e., two times R. Cve was 0.23 +/- 0.051 l/cmH2O, i.e., four times static compliance. The viscoelastic time constant, i.e., Cve.Rve, was 0.82 +/- 0.11s. The work dissipated against the viscoelastic system was 0.62 +/- 0.13 cmH2O x 1 for a breath of 0.56 liter, corresponding to 32% of the total energy loss within the RS. Viscoelastic recoil contributed as a driving force during the initial part of expiration.

Subject headings

MEDICIN OCH HÄLSOVETENSKAP  -- Medicinska och farmaceutiska grundvetenskaper -- Fysiologi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Basic Medicine -- Physiology (hsv//eng)

Keyword

Adult
Air Pressure
Anesthesia
Elasticity
Female
Humans
Lung Compliance
Male
Mathematics
Middle Aged
Models, Biological
Respiratory Mechanics
Respiratory Physiological Phenomena
Tidal Volume
Ventilators, Mechanical
Viscosity
Work of Breathing
Journal Article
Research Support, Non-U.S. Gov't

Publication and Content Type

art (subject category)
ref (subject category)

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By the author/editor
Jonson, B
Beydon, L
Brauer, K
Månsson, C
Valind, S
Grytzell, H
About the subject
MEDICAL AND HEALTH SCIENCES
MEDICAL AND HEAL ...
and Basic Medicine
and Physiology
Articles in the publication
Journal of Appli ...
By the university
Lund University

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