HR: 1340h
AN: A43D-1564 [Abstracts]
TI: Proof-of-Concept for an Advanced Sunphotometer
AU: * Brill, R
EM: rbrill@mail.arc.nasa.gov
AF: San Jose State University, One Washington Square, San Jose, CA 95192,
AU: Strawa, A W
EM: Anthony.W.Strawa@nasa.gov
AF: NASA Ames Research Center, Mail Stop 245-4, Moffett Field, CA 94035, United States
AU: Papdopoulos, P
EM: ppapado1@email.sjsu.edu
AF: San Jose State University, One Washington Square, San Jose, CA 95192,
AU: Le, T
EM: tnle@mail.arc.nasa.gov
AF: San Jose State University, One Washington Square, San Jose, CA 95192,
AB:
Aerosols have a profound effect on the radiation balance of the atmosphere. Current estimates of the direct and
indirect effects are -0.9 to -0.1 and -1.8 to -0.3 W m-2, respectively, but remain highly uncertain (IPCC, 2007).
These uncertainties are tied to our inability to accurately estimate spatial and temporal distributions of aerosol
concentrations, size, and composition. Measurements of aerosol optical depth (AOD) are needed from widely
distributed locations, both over land and ocean. AOD measurements from the surface are routinely made by
sunphotometers. Most notably, NASA's AERONET system makes routine measurements
of AOD at many sites throughout the globe. The problem is that very few measurements are made over the ocean
because of operational considerations, i.e. ships do not present a stable platform and the salt water spray is
damaging to the mechanisms used by the sunphotometers to track the sun. This paper reports on the
development of a sunphotometer that can obtain AOD without moving parts. Such an instrument has the potential
to be small, lightweight, and rugged. Potential applications are use in extreme environments, on ships and ocean
buoys, and perhaps in unmanned aerial systems (UAS). Due to its small size and light weight, the Advanced Sun
Photometer can be adapted for use on extraterrestrial bodies with sensible atmospheres, such as Mars or Titan.
Concept: Eliminating the need for a tracking mechanism can significantly reduce instrument weight and size
while increasing system robustness. The Advanced Sunphotometer uses a compact optical system to provide a
hemispherical field of view, removing the need for a sun tracking mechanism. A CCD array is placed at the base
of the optical system captures and records the light. Measurements at specific wavelengths are achieved by
interposing various interference filters into the light path by means of a filter wheel. The instrument measures the
diffuse radiation as well as the direct sun beam. Computer algorithms are used to separate the direct from the
diffuse radiation.
Current work: Although the CCD array records both the diffuse light entering the cone as well as the direct solar
beam, current efforts are have been focused on validating the direct beam measurements of AOD. Efforts have
been primarily focused on characterizing the instrument angular response, as well as validating measurements
of aerosol optical depth, and water-vapor columnar abundance. Comparisons of the Advanced Sunphotometer
AOD measurements will be made with the AOD readings taken with a commercial Microtops II handheld
sunphotometer.
DE: 0300 ATMOSPHERIC COMPOSITION AND STRUCTURE
DE: 0305 Aerosols and particles (0345, 4801, 4906)
DE: 0394 Instruments and techniques
SC: Atmospheric Sciences [A]
MN: 2007 Fall Meeting