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Spectrophotometric Modeling and Mapping of (101955) Bennu

Authors :
Jian-Yang Li (李荐扬)
Xiao-Duan Zou (邹小端)
Dathon R. Golish
Beth E. Clark
Salvatore Ferrone
Sonia Fornasier
Pedro H. Hasselmann
Andrew J. Ryan
Benjamin Rozitis
Joshua P. Emery
Matthew A. Siegler
Amy A. Simon
Daniella N. DellaGiustina
Dennis C. Reuter
Victoria E. Hamilton
Dante S. Lauretta
Source :
Planetary Science Journal. 2(3)
Publication Year :
2021
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2021.

Abstract

Using hyperspectral data collected by OVIRS, the visible and infrared spectrometer onboard the OSIRIS-REx (Origins, Spectral Interpretation, Resource Identification, and Security–Regolith Explorer) spacecraft, we modeled the global average spectrophotometric properties of the carbonaceous asteroid (101955) Bennu and mapped their variations. We restricted our analysis to 0.4–2.5 µm to avoid the wavelengths where thermal emission from the asteroid dominates (>2.5 µm). Bennu has global photometric properties typical of dark asteroids; we found a geometric albedo of 0.046 ± 0.007 and a linear phase slope of 0.024 ± 0.007 mag deg–1 at 0.55 µm. The average spectral slope of Bennu’s normal albedo is –0.0030 µm–1, and the phase reddening parameter is 4.3´10–4 µm–1 deg–1, both over the spectral range of 0.5–2.0 µm. We produced normal albedo maps and phase slope maps at all spectral channels, from which we derived spectral slope and phase reddening maps. Correlation analysis suggests that phase slope variations on Bennu are likely due to photometric roughness variation. A correlation between photometric roughness and thermal roughness is evident, implying that the roughness of Bennu is self-similar on scales from tens of microns to meters. Our analysis reveals latitudinal trends in the spectral color slope and phase reddening on Bennu. The equatorial region appears to be redder than the global average, and the spectral slope decreases towards higher latitudes. Phase reddening on Bennu is relatively weak in the equatorial region and shows an asymmetry between the northern and southern hemispheres. We attributed the latitudinal trend to the geophysical conditions on Bennu that result in a global pattern of mass flow towards the equator.

Details

Language :
English
ISSN :
26323338
Volume :
2
Issue :
3
Database :
NASA Technical Reports
Journal :
Planetary Science Journal
Notes :
828928.07.02.03.02, , J-090007, , NNM10AA11C
Publication Type :
Report
Accession number :
edsnas.20210017380
Document Type :
Report
Full Text :
https://doi.org/10.3847/PSJ/abfd2d