CONVECTIVE AND DIFFUSIVE GAS-TRANSPORT IN CANINE INTRAPULMONARY AIRWAYS

被引:42
作者
SCHULZ, H [1 ]
HEILMANN, P [1 ]
HILLEBRECHT, A [1 ]
GEBHART, J [1 ]
MEYER, M [1 ]
PIIPER, J [1 ]
HEYDER, J [1 ]
机构
[1] MAX PLANCK INST EXPTL MED,PHYSIOL ABT,W-3400 GOTTINGEN,GERMANY
关键词
COMBINED GAS AND PARTICLE BOLUS; HELIUM; SULFUR HEXAFLUORIDE; AEROSOL; CONVECTION; DIFFUSION; TAYLOR DISPERSION;
D O I
10.1152/jappl.1992.72.4.1557
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The significance of convective and diffusive gas transport in the respiratory system was assessed from the response of combined inert gas and particle boluses inhaled into the conducting airways. Particles, considered as "nondiffusing gas," served as tracers for convection and two inert gases with widely different diffusive characteristics (He and SF6) as tracers for convection and diffusion. Six-milliliter boluses labeled with monodisperse di-2-ethylhexyl sebacate droplets of 0.86-mu-m aerodynamic diameter, 2% He, and 2% SF6 were inspired by three anesthetized mechanically ventilated beagle dogs to volumetric lung depths up to 170 ml. Mixing between inspired and residual air caused dispersion of the inspired bolus, which was quantified in terms of the bolus half-width. Dispersion of particles increased with increasing lung depth to which the boluses were inhaled. The increase followed a power law with exponents < 0.5 (mean 0.39), indicating that the effect of convective mixing per unit volume was reduced with depth. Within the pulmonary dead space, the behavior of the inert gases He and SF6 was similar to that of the particles, suggesting that gas transport was almost solely due to convection. Beyond the dead space, dispersion of He and SF6 increased more rapidly than dispersion of particles, indicating that diffusion became significant. The gas and particle bolus technique offers a suitable approach to differential analysis of gas transport in intrapulmonary airways of lungs.
引用
收藏
页码:1557 / 1562
页数:6
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