HR: 0830h
AN: A21E-1029 [PDF]
TI: A Method for Measuring the Density of Irregularly Shaped Aerosol Particles Such as Pollen
AU: * van Hout, R
EM: vanhout@pegasus.me.jhu.edu
AF: The Johns Hopkins University
Whiting School of Engineering
Department of Mechanical Engineering
223 Latrobe Hall, 3400 N. Charles Street, Baltimore, MD 21218 United States
AU: Katz, J
EM: katz@titan.me.jhu.edu
AF: The Johns Hopkins University
Whiting School of Engineering
Department of Mechanical Engineering
223 Latrobe Hall, 3400 N. Charles Street, Baltimore, MD 21218 United States
AB:
Prediction of the long distance dispersal of (biological) aerosol particles, such as pollen, in the atmosphere is of great
importance in pollution control and allergy studies. The particle parameters affecting dispersal include size, shape and
density.
In this work a simple method has been tested and implemented for measuring the density of aerosols without prior knowledge of
their size and shape. The method is based on measurement of the settling velocity of particles in two fluids with different
density and viscosity at low Reynolds numbers (Stokes flow). Consequently, the settling velocity is proportional to the
particle size and density. For two statistically similar samples of particles, based on pdf of equivalent projected area
diameter, the pdf of the particle settling velocity was measured in two fluids with different density and viscosity (Dow
Corning 200 fluid). For known fluid properties, the resulting particle density is then proportional to the ratio of the
settling velocities in the two fluids. The method was used to determine the density of corn (Zea Mays) pollen.
The pollen settling velocity was measured in a square settling chamber (5x5x45cm) using in-line digital holography that
allows in-focus tracking of the pollen in a 3-D sample volume. Additional advantages of in-line digital holography are its
simple setup and the possibility of recording holographic movies. The measured mean corn pollen density was 1119.3 kg/m3 with
an absolute error of 45.2 kg/m3.
Pdf's of size distributions (based on projected areas) of corn pollen were determined using optical microscopy and Scanning
Electron Microscopy (SEM). These observations were performed with pollen immersed in both Dow Corning 200 fluids as well as
in a dry state. No change in size and shape were observed. However when immersed in water, the corn pollen grew and became
nearly spherical. Thus, for a known pollen density and size distribution, Stokes' Law for a sphere could be used to predict
the settling velocities in water. The results agreed well with predictions, validating the measured density.
This research is funded by the National Science Foundation.
UR: http://pegasus.me.jhu.edu/~lefd/BioComp/PollenDensity/PollenDensity.htm
DE: 0305 Aerosols and particles (0345, 4801)
SC: Atmospheric Sciences [A]
MN: 2003 Fall Meeting