HR: 0800h
AN: P51B-0492 [Abstracts]
TI: Thermal Effects of Lunar Surface Roughness: Application for the 2008 LRO Diviner Lunar Radiometer Experiment
AU: * Greenhagen, B
EM: greenhagen@ucla.edu
AF: University of California, Los Angeles - Dept of Earth and Space Sciences, 595 Charles
Young Drive East
Box 951567, Los Angeles, CA 90095-1567,
AU: Paige, D A
EM: dap@mars.ucla.edu
AF: University of California, Los Angeles - Dept of Earth and Space Sciences, 595 Charles
Young Drive East
Box 951567, Los Angeles, CA 90095-1567,
AB:
It is well known that surface roughness affects spectral slope in the infrared. For the first time, we applied a
three-dimensional thermal model to a high resolution lunar topography map to study the effects of surface
roughness on lunar thermal emission spectra. We applied a numerical instrument model of the upcoming
Diviner Lunar Radiometer Experiment (DLRE) to simulate the expected instrument response to surface
roughness variations.
The Diviner Lunar Radiometer Experiment (DLRE) will launch in late 2008 onboard the Lunar Reconnaissance
Orbiter (LRO). DLRE is a nine-channel radiometer designed to study the thermal and petrologic properties of the
lunar surface. DLRE has two solar channels (0.3-3.0 μm high/low sensitivity), three mid-infrared petrology
channels (7.55-8.05, 8.10-8.40 8.40-8.70 μm), and four thermal infrared channels (12.5-25, 25-50, 50-100,
and 100-200 μm).
The topographic data we used was selected from a USGS Hadley Rille DEM (from Apollo 15 Panoramic Camera
data) with 10 m resolution (M. Rosiek; personal communication). To remove large scale topographic features,
we applied a 200 x 200 pixel boxcar high-pass filter to a relatively flat portion of the DEM. This "flattened" surface
roughness map served as the basis for much of this study. We also examined the unaltered topography.
Surface temperatures were calculated using a three-dimensional ray tracing thermal model. We created
temperature maps at numerous solar incidence angles with nadir viewing geometry. A DLRE instrument model,
which includes filter spectral responses and detector fields of view, was applied to the high resolution
temperature maps. We studied both the thermal and petrologic effects of surface roughness. For the thermal
study, the output of the optics model is a filter specific temperature, scaled to a DLRE footprint of < 500 m. For
the petrologic study, we examined the effect of the surface roughness induced spectral slope on the DLRE's
ability to locate the Christiansen Feature, which is a good compositional indicator.
With multiple thermal infrared channels over a wide spectral range, DLRE will be well suited to measure
temperature variations due to surface roughness. Any necessary compensation (e.g. correction for spectral
slope) to the mid-infrared petrology data will be performed.
DE: 5134 Thermal properties
DE: 5464 Remote sensing
DE: 5470 Surface materials and properties
DE: 5494 Instruments and techniques
SC: Planetary Sciences [P]
MN: 2007 Fall Meeting