GAUSS -- A Sample Return Mission to Ceres

Fuente: arXiv
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Auteurs principaux: Shi, Xian, Castillo-Rogez, Julie, Hsieh, Henry, Hui, Hejiu, Ip, Wing-Huen, Lei, Hanlun, Li, Jian-Yang, Tosi, Federico, Zhou, Liyong, Agarwal, Jessica, Barucci, Antonella, Beck, Pierre, Bagatin, Adriano Campo, Capaccioni, Fabrizio, Coates, Andrew, Cremonese, Gabriele, Duffard, Rene, Jaumann, Ralf, Jones, Geraint, Grande, Manuel, Kallio, Esa, Lin, Yangting, Mousis, Olivier, Nathues, Andreas, Oberst, Jürgen, Showman, Adam, Sierks, Holger, Ulamec, Stephan, Wang, Mingyuan
Format: Preprint
Publié: 2019
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_version_ 1866913027341680640
author Shi, Xian
Castillo-Rogez, Julie
Hsieh, Henry
Hui, Hejiu
Ip, Wing-Huen
Lei, Hanlun
Li, Jian-Yang
Tosi, Federico
Zhou, Liyong
Agarwal, Jessica
Barucci, Antonella
Beck, Pierre
Bagatin, Adriano Campo
Capaccioni, Fabrizio
Coates, Andrew
Cremonese, Gabriele
Duffard, Rene
Jaumann, Ralf
Jones, Geraint
Grande, Manuel
Kallio, Esa
Lin, Yangting
Mousis, Olivier
Nathues, Andreas
Oberst, Jürgen
Showman, Adam
Sierks, Holger
Ulamec, Stephan
Wang, Mingyuan
author_facet Shi, Xian
Castillo-Rogez, Julie
Hsieh, Henry
Hui, Hejiu
Ip, Wing-Huen
Lei, Hanlun
Li, Jian-Yang
Tosi, Federico
Zhou, Liyong
Agarwal, Jessica
Barucci, Antonella
Beck, Pierre
Bagatin, Adriano Campo
Capaccioni, Fabrizio
Coates, Andrew
Cremonese, Gabriele
Duffard, Rene
Jaumann, Ralf
Jones, Geraint
Grande, Manuel
Kallio, Esa
Lin, Yangting
Mousis, Olivier
Nathues, Andreas
Oberst, Jürgen
Showman, Adam
Sierks, Holger
Ulamec, Stephan
Wang, Mingyuan
contents The goal of Project GAUSS is to return samples from the dwarf planet Ceres. Ceres is the most accessible ocean world candidate and the largest reservoir of water in the inner solar system. It shows active cryovolcanism and hydrothermal activities in recent history that resulted in minerals not found in any other planets to date except for Earth's upper crust. The possible occurrence of recent subsurface ocean on Ceres and the complex geochemistry suggest possible past habitability and even the potential for ongoing habitability. Aiming to answer a broad spectrum of questions about the origin and evolution of Ceres and its potential habitability, GAUSS will return samples from this possible ocean world for the first time. The project will address the following top-level scientific questions: 1) What is the origin of Ceres and the origin and transfer of water and other volatiles in the inner solar system? 2) What are the physical properties and internal structure of Ceres? What do they tell us about the evolutionary and aqueous alteration history of icy dwarf planets? 3) What are the astrobiological implications of Ceres? Was it habitable in the past and is it still today? 4) What are the mineralogical connections between Ceres and our current collections of primitive meteorites? GAUSS will first perform a high-resolution global remote sensing investigation, characterizing the geophysical and geochemical properties of Ceres. Candidate sampling sites will then be identified, and observation campaigns will be run for an in-depth assessment of the candidate sites. Once the sampling site is selected, a lander will be deployed on the surface to collect samples and return them to Earth in cryogenic conditions that preserves the volatile and organic composition as well as the original physical status as much as possible.
format Preprint
id arxiv_https___arxiv_org_abs_1908_07731
institution arXiv
publishDate 2019
record_format arxiv
spellingShingle GAUSS -- A Sample Return Mission to Ceres
Shi, Xian
Castillo-Rogez, Julie
Hsieh, Henry
Hui, Hejiu
Ip, Wing-Huen
Lei, Hanlun
Li, Jian-Yang
Tosi, Federico
Zhou, Liyong
Agarwal, Jessica
Barucci, Antonella
Beck, Pierre
Bagatin, Adriano Campo
Capaccioni, Fabrizio
Coates, Andrew
Cremonese, Gabriele
Duffard, Rene
Jaumann, Ralf
Jones, Geraint
Grande, Manuel
Kallio, Esa
Lin, Yangting
Mousis, Olivier
Nathues, Andreas
Oberst, Jürgen
Showman, Adam
Sierks, Holger
Ulamec, Stephan
Wang, Mingyuan
Instrumentation and Methods for Astrophysics
Earth and Planetary Astrophysics
The goal of Project GAUSS is to return samples from the dwarf planet Ceres. Ceres is the most accessible ocean world candidate and the largest reservoir of water in the inner solar system. It shows active cryovolcanism and hydrothermal activities in recent history that resulted in minerals not found in any other planets to date except for Earth's upper crust. The possible occurrence of recent subsurface ocean on Ceres and the complex geochemistry suggest possible past habitability and even the potential for ongoing habitability. Aiming to answer a broad spectrum of questions about the origin and evolution of Ceres and its potential habitability, GAUSS will return samples from this possible ocean world for the first time. The project will address the following top-level scientific questions: 1) What is the origin of Ceres and the origin and transfer of water and other volatiles in the inner solar system? 2) What are the physical properties and internal structure of Ceres? What do they tell us about the evolutionary and aqueous alteration history of icy dwarf planets? 3) What are the astrobiological implications of Ceres? Was it habitable in the past and is it still today? 4) What are the mineralogical connections between Ceres and our current collections of primitive meteorites? GAUSS will first perform a high-resolution global remote sensing investigation, characterizing the geophysical and geochemical properties of Ceres. Candidate sampling sites will then be identified, and observation campaigns will be run for an in-depth assessment of the candidate sites. Once the sampling site is selected, a lander will be deployed on the surface to collect samples and return them to Earth in cryogenic conditions that preserves the volatile and organic composition as well as the original physical status as much as possible.
title GAUSS -- A Sample Return Mission to Ceres
topic Instrumentation and Methods for Astrophysics
Earth and Planetary Astrophysics
url https://arxiv.org/abs/1908.07731