Oriented Bedrock Samples Drilled by the Perseverance Rover on Mars

Author:

Weiss Benjamin P.1ORCID,Mansbach Elias N.1ORCID,Carsten Joseph L.2,Kaplan Kyle W.2ORCID,Maki Justin N.2ORCID,Wiens Roger C.3ORCID,Bosak Tanja1ORCID,Collins Curtis L.2,Fentress Jennifer1,Feinberg Joshua M.4ORCID,Goreva Yulia2ORCID,Kennedy Wu Megan5,Estlin Tara A.2,Klein Douglas E.2ORCID,Kronyak Rachel E.2ORCID,Moeller Robert C.2,Peper Nicholas2,Reyes‐Newell Adriana6,Sephton Mark A.7ORCID,Shuster David L.8,Simon Justin I.9ORCID,Williford Kenneth H.10,Stack Kathryn W.2ORCID,Farley Kenneth A.11

Affiliation:

1. Department of Earth, Atmospheric and Planetary Sciences Massachusetts Institute of Technology Cambridge MA USA

2. Jet Propulsion Laboratory California Institute of Technology Pasadena CA USA

3. Department of Earth, Atmospheric, and Planetary Sciences Purdue University West Lafayette IN USA

4. Department of Earth and Environmental Sciences Institute for Rock Magnetism University of Minnesota Minneapolis MN USA

5. Malin Space Science Systems, Inc. San Diego CA USA

6. Southwest Sciences, Inc. Santa Fe NM USA

7. Department of Earth Sciences and Engineering Imperial College London London UK

8. Department of Earth and Planetary Science University of California, Berkeley Berkeley CA USA

9. Astromaterials Research and Exploration Science Division Center for Isotope Cosmochemistry and Geochronology NASA Johnson Space Center Houston TX USA

10. Blue Marble Space Institute of Science Seattle WA USA

11. Division of Geological and Planetary Sciences California Institute of Technology Pasadena CA USA

Abstract

AbstractA key objective of the Perseverance rover mission is to acquire samples of Martian rocks for future return to Earth. Eventual laboratory analyses of these samples would address key questions about the evolution of the Martian climate, interior, and habitability. Many such investigations would benefit greatly from samples of Martian bedrock that are oriented in absolute Martian geographic coordinates. However, the Mars 2020 mission was designed without a requirement for orienting the samples. Here we describe a methodology that we developed for orienting rover drill cores in the Martian geographic frame and its application to Perseverance's first 20 rock samples. To orient the cores, three angles were measured: the azimuth and hade of the core pointing vector (i.e., vector oriented along the core axis) and the core roll (i.e., the solid body angle of rotation around the pointing vector). We estimated the core pointing vector from the attitude of the rover's Coring Drill during drilling. To orient the core roll, we used oriented images of asymmetric markings on the bedrock surface acquired with the rover's Wide Angle Topographic Sensor for Operations and eNgineering (WATSON) camera. For most samples, these markings were in the form of natural features on the outcrop, while for four samples they were artificial ablation pits produced by the rover's SuperCam laser. These cores are the first geographically‐oriented (<2.7° 3σ total uncertainty) bedrock samples from another planetary body. This will enable a diversity of paleomagnetic, sedimentological, igneous, tectonic, and astrobiological studies on the returned samples.

Publisher

American Geophysical Union (AGU)

Reference76 articles.

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