Literature DB >> 32661458

Modeling orbital gamma-ray spectroscopy experiments at carbonaceous asteroids.

Lucy F Lim1, Richard D Starr1,2, Larry G Evans1,3, Ann M Parsons1, Michael E Zolensky4, William V Boynton5.   

Abstract

To evaluate the feasibility of measuring differences in bulk composition among carbonaceous meteorite parent bodies from an asteroid or comet orbiter, we present the results of a performance simulation of an orbital gamma-ray spectroscopy (GRS) experiment in a Dawn-like orbit around spherical model asteroids with a range of carbonaceous compositions. The orbital altitude was held equal to the asteroid radius for 4.5 months. Both the asteroid gamma-ray spectrum and the spacecraft background flux were calculated using the MCNPX Monte-Carlo code. GRS is sensitive to depths below the optical surface (to ≈20-50 cm depth depending on material density). This technique can therefore measure underlying compositions beneath a sulfur-depleted (e.g., Nittler et al. 2001) or desiccated surface layer. We find that 3σ uncertainties of under 1 wt% are achievable for H, C, O, Si, S, Fe, and Cl for five carbonaceous meteorite compositions using the heritage Mars Odyssey GRS design in a spacecraft-deck-mounted configuration at the Odyssey end-of-mission energy resolution, FWHM = 5.7 keV at 1332 keV. The calculated compositional uncertainties are smaller than the compositional differences between carbonaceous chondrite subclasses.

Entities:  

Year:  2016        PMID: 32661458      PMCID: PMC7357204          DOI: 10.1111/maps.12786

Source DB:  PubMed          Journal:  Meteorit Planet Sci        ISSN: 1086-9379            Impact factor:   2.487


  1 in total

1.  The fall, recovery, orbit, and composition of the Tagish Lake meteorite: a new type of carbonaceous chondrite.

Authors:  P G Brown; A R Hildebrand; M E Zolensky; M Grady; R N Clayton; T K Mayeda; E Tagliaferri; R Spalding; N D MacRae; E L Hoffman; D W Mittlefehldt; J F Wacker; J A Bird; M D Campbell; R Carpenter; H Gingerich; M Glatiotis; E Greiner; M J Mazur; P J McCausland; H Plotkin; T Rubak Mazur
Journal:  Science       Date:  2000-10-13       Impact factor: 47.728

  1 in total

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