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Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool

Chang’E-4 landed in the South Pole-Aitken (SPA) basin, providing a unique chance to probe the composition of the lunar interior. Its landing site is located on ejecta strips in Von Kármán crater that possibly originate from the neighboring Finsen crater. A surface rock and the lunar regolith at 10 s...

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Autores principales: Lin, Honglei, He, Zhiping, Yang, Wei, Lin, Yangting, Xu, Rui, Zhang, Chi, Zhu, Meng-Hua, Chang, Rui, Zhang, Jinhai, Li, Chunlai, Lin, Hongyu, Liu, Yang, Gou, Sheng, Wei, Yong, Hu, Sen, Xue, Changbin, Yang, Jianfeng, Zhong, Jie, Fu, Xiaohui, Wan, Weixing, Zou, Yongliao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8288882/
https://www.ncbi.nlm.nih.gov/pubmed/34692112
http://dx.doi.org/10.1093/nsr/nwz183
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author Lin, Honglei
He, Zhiping
Yang, Wei
Lin, Yangting
Xu, Rui
Zhang, Chi
Zhu, Meng-Hua
Chang, Rui
Zhang, Jinhai
Li, Chunlai
Lin, Hongyu
Liu, Yang
Gou, Sheng
Wei, Yong
Hu, Sen
Xue, Changbin
Yang, Jianfeng
Zhong, Jie
Fu, Xiaohui
Wan, Weixing
Zou, Yongliao
author_facet Lin, Honglei
He, Zhiping
Yang, Wei
Lin, Yangting
Xu, Rui
Zhang, Chi
Zhu, Meng-Hua
Chang, Rui
Zhang, Jinhai
Li, Chunlai
Lin, Hongyu
Liu, Yang
Gou, Sheng
Wei, Yong
Hu, Sen
Xue, Changbin
Yang, Jianfeng
Zhong, Jie
Fu, Xiaohui
Wan, Weixing
Zou, Yongliao
author_sort Lin, Honglei
collection PubMed
description Chang’E-4 landed in the South Pole-Aitken (SPA) basin, providing a unique chance to probe the composition of the lunar interior. Its landing site is located on ejecta strips in Von Kármán crater that possibly originate from the neighboring Finsen crater. A surface rock and the lunar regolith at 10 sites along the rover Yutu-2 track were measured by the onboard Visible and Near-Infrared Imaging Spectrometer in the first three lunar days of mission operations. In situ spectra of the regolith have peak band positions at 1 and 2 μm, similar to the spectral data of Finsen ejecta from the Moon Mineralogy Mapper, which confirms that the regolith's composition of the landing area is mostly similar to that of Finsen ejecta. The rock spectrum shows similar band peak positions, but stronger absorptions, suggesting relatively fresh exposure. The rock may consist of 38.1 ± 5.4% low-Ca pyroxene, 13.9 ± 5.1% olivine and 48.0 ± 3.1% plagioclase, referred to as olivine-norite. The plagioclase-abundant and olivine-poor modal composition of the rock is inconsistent with the origin of the mantle, but representative of the lunar lower crust. Alternatively, the rock crystallized from the impact-derived melt pool formed by the SPA-impact event via mixing the lunar crust and mantle materials. This scenario is consistent with fast-cooling thermal conditions of a shallow melt pool, indicated by the fine to medium-sized texture (<3 mm) of the rock and the SPA-impact melting model [Icarus 2012; 220: 730–43].
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spelling pubmed-82888822021-10-21 Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool Lin, Honglei He, Zhiping Yang, Wei Lin, Yangting Xu, Rui Zhang, Chi Zhu, Meng-Hua Chang, Rui Zhang, Jinhai Li, Chunlai Lin, Hongyu Liu, Yang Gou, Sheng Wei, Yong Hu, Sen Xue, Changbin Yang, Jianfeng Zhong, Jie Fu, Xiaohui Wan, Weixing Zou, Yongliao Natl Sci Rev Research Article Chang’E-4 landed in the South Pole-Aitken (SPA) basin, providing a unique chance to probe the composition of the lunar interior. Its landing site is located on ejecta strips in Von Kármán crater that possibly originate from the neighboring Finsen crater. A surface rock and the lunar regolith at 10 sites along the rover Yutu-2 track were measured by the onboard Visible and Near-Infrared Imaging Spectrometer in the first three lunar days of mission operations. In situ spectra of the regolith have peak band positions at 1 and 2 μm, similar to the spectral data of Finsen ejecta from the Moon Mineralogy Mapper, which confirms that the regolith's composition of the landing area is mostly similar to that of Finsen ejecta. The rock spectrum shows similar band peak positions, but stronger absorptions, suggesting relatively fresh exposure. The rock may consist of 38.1 ± 5.4% low-Ca pyroxene, 13.9 ± 5.1% olivine and 48.0 ± 3.1% plagioclase, referred to as olivine-norite. The plagioclase-abundant and olivine-poor modal composition of the rock is inconsistent with the origin of the mantle, but representative of the lunar lower crust. Alternatively, the rock crystallized from the impact-derived melt pool formed by the SPA-impact event via mixing the lunar crust and mantle materials. This scenario is consistent with fast-cooling thermal conditions of a shallow melt pool, indicated by the fine to medium-sized texture (<3 mm) of the rock and the SPA-impact melting model [Icarus 2012; 220: 730–43]. Oxford University Press 2020-05 2019-11-14 /pmc/articles/PMC8288882/ /pubmed/34692112 http://dx.doi.org/10.1093/nsr/nwz183 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of China Science Publishing & Media Ltd. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Lin, Honglei
He, Zhiping
Yang, Wei
Lin, Yangting
Xu, Rui
Zhang, Chi
Zhu, Meng-Hua
Chang, Rui
Zhang, Jinhai
Li, Chunlai
Lin, Hongyu
Liu, Yang
Gou, Sheng
Wei, Yong
Hu, Sen
Xue, Changbin
Yang, Jianfeng
Zhong, Jie
Fu, Xiaohui
Wan, Weixing
Zou, Yongliao
Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title_full Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title_fullStr Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title_full_unstemmed Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title_short Olivine-norite rock detected by the lunar rover Yutu-2 likely crystallized from the SPA-impact melt pool
title_sort olivine-norite rock detected by the lunar rover yutu-2 likely crystallized from the spa-impact melt pool
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8288882/
https://www.ncbi.nlm.nih.gov/pubmed/34692112
http://dx.doi.org/10.1093/nsr/nwz183
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