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Reevaluated martian atmospheric mixing ratios from the mass spectrometer on the Curiosity rover

Authors :
Heidi L. K. Manning
Michael H. Wong
Melissa G. Trainer
Paul R. Mahaffy
Sushil K. Atreya
Jennifer C. Stern
Heather B. Franz
Source :
Planetary and Space Science. :154-158
Publication Year :
2015
Publisher :
Elsevier BV, 2015.

Abstract

The Sample Analysis at Mars (SAM) instrument suite of the Mars Science Laboratory (MSL) Curiosity rover is a miniature geochemical laboratory designed to analyze martian atmospheric gases as well as volatiles released by pyrolysis of solid surface materials ( Mahaffy et al., 2012 ). SAM began sampling the martian atmosphere to measure its chemical and isotopic composition shortly after Curiosity landed in Mars׳ Gale Crater in August 2012 ( Mahaffy et al., 2013 ). Analytical methods and constants required for atmospheric measurements with SAM׳s quadrupole mass spectrometer (QMS) were provided in a previous contribution ( Franz et al., 2014 ). Review of results obtained through application of these constants to repeated analyses over a full martian year and supporting studies with laboratory instruments offer new insights into QMS performance that allow refinement of the calibration constants and critical reassessment of their estimated uncertainties. This report describes the findings of these studies, provides updated calibration constants for atmospheric analyses with the SAM QMS, and compares volume mixing ratios for the martian atmosphere retrieved with the revised constants to those initially reported ( Mahaffy et al., 2013 ). Sufficient confidence is enabled by the extended data set to support calculation of precise abundances for CO rather than an upper limit. Reanalysis of data acquired on mission sols 45 and 77 (at solar longitudes of 175° and 193°, respectively) with the revised constants leads to the following average volume mixing ratios: CO 2 0.957(±0.016), N 2 0.0203(±0.0003), Ar 0.0207(±0.0002), O 2 1.73(±0.06)×10 −3 , CO 7.49(±0.026)×10 −4 .

Details

ISSN :
00320633
Database :
OpenAIRE
Journal :
Planetary and Space Science
Accession number :
edsair.doi...........7f3619a16bd63bc80b55a5732714f188
Full Text :
https://doi.org/10.1016/j.pss.2015.02.014