Technology Selection for Inline Topography Measurement with Rover-Borne Laser Spectrometers

Author:

Ryan Conor12,Haist Tobias1,Laskin Gennadii3,Schröder Susanne2ORCID,Reichelt Stephan1ORCID

Affiliation:

1. Institute for Applied Optics (ITO), University of Stuttgart, 70569 Stuttgart, Germany

2. Institute of Optical Sensor Systems, German Aerospace Center, 12489 Berlin, Germany

3. Department of Production Control, Fraunhofer Institute for Physical Measurement Techniques IPM, 79110 Freiburg, Germany

Abstract

This work studies enhancing the capabilities of compact laser spectroscopes integrated into space-exploration rovers by adding 3D topography measurement techniques. Laser spectroscopy enables the in situ analysis of sample composition, aiding in the understanding of the geological history of extraterrestrial bodies. To complement spectroscopic data, the inclusion of 3D imaging is proposed to provide unprecedented contextual information. The morphological information aids material characterization and hence the constraining of rock and mineral histories. Assigning height information to lateral pixels creates topographies, which offer a more complete spatial dataset than contextual 2D imaging. To aid the integration of 3D measurement into future proposals for rover-based laser spectrometers, the relevant scientific, rover, and sample constraints are outlined. The candidate 3D technologies are discussed, and estimates of performance, weight, and power consumptions guide the down-selection process in three application examples. Technology choice is discussed from different perspectives. Inline microscopic fringe-projection profilometry, incoherent digital holography, and multiwavelength digital holography are found to be promising candidates for further development.

Publisher

MDPI AG

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