QRIS: A Quantitative Reflectance Imaging System for the Pristine Sample of Asteroid Bennu

Fuente: arXiv
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Main Authors: Fulford, Ruby E., Golish, Dathon R., Lauretta, Dante S., DellaGiustina, Daniella N., Meyer, Steve, Lunning, Nicole, Snead, Christopher, Righter, Kevin, Dworkin, Jason P., Bennett, Carina A., Connolly Jr., Harold C., Johnson, Taylor, Polit, Anjani T., Haennecour, Pierre, Ryan, Andrew J.
Format: Preprint
Published: 2024
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author Fulford, Ruby E.
Golish, Dathon R.
Lauretta, Dante S.
DellaGiustina, Daniella N.
Meyer, Steve
Lunning, Nicole
Snead, Christopher
Righter, Kevin
Dworkin, Jason P.
Bennett, Carina A.
Connolly Jr., Harold C.
Johnson, Taylor
Polit, Anjani T.
Haennecour, Pierre
Ryan, Andrew J.
author_facet Fulford, Ruby E.
Golish, Dathon R.
Lauretta, Dante S.
DellaGiustina, Daniella N.
Meyer, Steve
Lunning, Nicole
Snead, Christopher
Righter, Kevin
Dworkin, Jason P.
Bennett, Carina A.
Connolly Jr., Harold C.
Johnson, Taylor
Polit, Anjani T.
Haennecour, Pierre
Ryan, Andrew J.
contents The Quantitative Reflectance Imaging System (QRIS) is a laboratory-based spectral imaging system constructed to image the sample of asteroid Bennu delivered to Earth by the Origins, Spectral Interpretation, Resource Identification, and Security-Regolith Explorer (OSIRIS-REx) spacecraft. The system was installed in the OSIRIS-REx cleanroom at NASA's Johnson Space Center to collect data during preliminary examination of the Bennu sample. QRIS uses a 12-bit machine vision camera to measure reflectance over wavelength bands spanning the near ultraviolet to the near infrared. Raw data are processed by a calibration pipeline that generates a series of monochromatic, high-dynamic-range reflectance images, as well as band ratio maps, band depth maps, and 3-channel color images. The purpose of these spectral reflectance data is to help characterize lithologies in the sample and compare them to lithologies observed on Bennu by the OSIRIS-REx spacecraft. This initial assessment of lithological diversity was intended to help select the subsamples that will be used to address mission science questions about the early solar system and the origins of life and to provide important context for the selection of representative subsamples for preservation and distribution to international partners. When QRIS imaged the Bennu sample, unexpected calibration issues arose that had not been evident at imaging rehearsals and negatively impacted the quality of QRIS data. These issues were caused by stray light within the lens and reflections off the glovebox window and interior, and were exacerbated by the sample's extremely low reflectance. QRIS data were useful for confirming conclusions drawn from other data, but reflectance and spectral data from QRIS alone unfortunately have limited utility.
format Preprint
id arxiv_https___arxiv_org_abs_2402_18674
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle QRIS: A Quantitative Reflectance Imaging System for the Pristine Sample of Asteroid Bennu
Fulford, Ruby E.
Golish, Dathon R.
Lauretta, Dante S.
DellaGiustina, Daniella N.
Meyer, Steve
Lunning, Nicole
Snead, Christopher
Righter, Kevin
Dworkin, Jason P.
Bennett, Carina A.
Connolly Jr., Harold C.
Johnson, Taylor
Polit, Anjani T.
Haennecour, Pierre
Ryan, Andrew J.
Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
Instrumentation and Detectors
The Quantitative Reflectance Imaging System (QRIS) is a laboratory-based spectral imaging system constructed to image the sample of asteroid Bennu delivered to Earth by the Origins, Spectral Interpretation, Resource Identification, and Security-Regolith Explorer (OSIRIS-REx) spacecraft. The system was installed in the OSIRIS-REx cleanroom at NASA's Johnson Space Center to collect data during preliminary examination of the Bennu sample. QRIS uses a 12-bit machine vision camera to measure reflectance over wavelength bands spanning the near ultraviolet to the near infrared. Raw data are processed by a calibration pipeline that generates a series of monochromatic, high-dynamic-range reflectance images, as well as band ratio maps, band depth maps, and 3-channel color images. The purpose of these spectral reflectance data is to help characterize lithologies in the sample and compare them to lithologies observed on Bennu by the OSIRIS-REx spacecraft. This initial assessment of lithological diversity was intended to help select the subsamples that will be used to address mission science questions about the early solar system and the origins of life and to provide important context for the selection of representative subsamples for preservation and distribution to international partners. When QRIS imaged the Bennu sample, unexpected calibration issues arose that had not been evident at imaging rehearsals and negatively impacted the quality of QRIS data. These issues were caused by stray light within the lens and reflections off the glovebox window and interior, and were exacerbated by the sample's extremely low reflectance. QRIS data were useful for confirming conclusions drawn from other data, but reflectance and spectral data from QRIS alone unfortunately have limited utility.
title QRIS: A Quantitative Reflectance Imaging System for the Pristine Sample of Asteroid Bennu
topic Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
Instrumentation and Detectors
url https://arxiv.org/abs/2402.18674