HR: 0800h
AN: A11C-0071 [Abstracts]
TI: A Study on the Optical Properties of Aerosols above the Forest by Remote Sensing
AU: * Bian, J
EM: bian@uji.energy.kyoto-u.ac.jp
AF: Graduate School of Energy Science, Kyoto University, Uji, Kyo 611-0011
Japan
AB:
Aerosol retrieval by remote sensing technique is one of the promising method in understanding the chemical and optical
properties, column load, and spatial distribution of aerosols. However, though the current technique in use is quite
successful about aerosols over ocean with small water-leaving radiances, quantitative retrieval of aerosols over land mass is
not yet satisfactory. We try to develop a new method to make the aerosol retrieval over land more accurate than ever before.
A sensitivity analysis of reflectance shows that wrong selection of spectral reflectance model results in quite a large
difference in retrieved aerosol characteristics. Therefore, a wellCsuited surface reflectance model is needed to be
created.
We conducted aerosol and radiation measurements coupled with in situ forest reflectance measurements in sync with satellite
radiance measurements by EOS Terra and Aqua from the top of the atmosphere. The experimental site is located in a forest with
an extensive and uniform area covered with deciduous trees commonly existing in Japan. The ground-based measurements include
Andersen impactor samplings, radiometric measurements with OPC, a sunphotometer and a telephotometer. Forest reflectance was
measured with a spectral radiometer covering visible and near infrared above the forest canopy level from a tower standing
in the forest. Reflectance was measured directionally, and was found to show no major bi-directional dependency, assuring us
that Lambert reflectance model is sufficient for calculation in this particular type of forest. The sampled spectral
reflectances were averaged to be 0.0414 at 0.55 $\mu$m.
For satellite aerosol retrieval, visible and near infrared bands in MODIS sensors were employed. MODTRAN code was used in
radiative transfer in the aerosol-laden atmosphere.
Several different types of aerosol were examined, and a rural aerosol model with similar size distribution and composition to
the aerosols, which are estimated from OPC measurements and Andersen samplings, was used as an input for the radiative
transfer calculation. Absorption coefficients were calculated from the data obtained from a separate carbon sampling.
The column aerosol optical depth was obtained to be 0.309 at 0.50 $\mu$m, which is similar to the value derived from
sunphotometer.
DE: 4801 Aerosols (0305)
DE: 0305 Aerosols and particles (0345, 4801)
DE: 0933 Remote sensing
SC: Atmospheric Sciences [A]
MN: 2004 AGU Fall Meeting