A Typical Path Model of Tracheobronchial Clearance of Inhaled Particles in Rats

Abstract

A mathematical description of particle clearance from the ciliated conducting airways (tracheobronchial region) of the lungs in rats was developed assuming that particles on the mucus blanket behave as a fluid and adhere to principles of fluid flow described by continuity equation. Effective particle transport velocities for given generations of airways were estimated from reported tracheal transport velocities. Using typical rat airway geometry and estimated particle transport velocities solutions of sets of rate equations for transport from each generation of airways were summed to estimate total particle clearance from the tracheobronchial region of the lung as a function of time. We used a wide range of aerosol particle size distribution data (MMAD ranging from 0.1 to 4.2 mm, and sg from 1 to 2.7) and concentration data from several investigators to predict short term, tracheobronchial clearance (retention) in rats and compared our predictions with their retention measurements. Based on an average of 17 simulations of tracheobronchial clearance the average difference between predicted and observed fractional retention of initial particle burden was 4.9%, with a tendency toward under prediction of clearance of particles > 3.0 mm.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2002
Accession Number
ADA402325

Entities

People

  • Edgar C. Kimmel
  • James E. Reboulet
  • Robert L. Carpenter

Organizations

  • Naval Health Research Center

Tags

Communities of Interest

  • Biomedical

DTIC Thesaurus Topics

  • Anatomy
  • Animals
  • Computational Science
  • Continuity
  • Diameters
  • Equations
  • Flow
  • Fluid Flow
  • Geometry
  • Laboratory Animals
  • Mathematical Models
  • Measurement
  • Particle Size
  • Particles
  • Respiratory Physiological Processes
  • Rodents
  • Thickness

Fields of Study

  • Biology

Readers

  • Aerosol Science/Aerosol Physics
  • Control Systems Engineering.
  • Immunology and Pathology