Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature

Impact basins on the Moon can serve as a benchmark for timing and intensity of the impact flux in the inner solar system. The basin morphology and morphometry depend on impactor size, mass, and velocity as well as the thermal state of the lunar lithosphere which is a function of the cooling history....

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Main Authors: Lompa, T., Wünnemann, K., Wahl, D., Padovan, S., Miljkovic, Katarina
Format: Journal Article
Language:English
Published: AMER GEOPHYSICAL UNION 2021
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/90189
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author Lompa, T.
Wünnemann, K.
Wahl, D.
Padovan, S.
Miljkovic, Katarina
author_facet Lompa, T.
Wünnemann, K.
Wahl, D.
Padovan, S.
Miljkovic, Katarina
author_sort Lompa, T.
building Curtin Institutional Repository
collection Online Access
description Impact basins on the Moon can serve as a benchmark for timing and intensity of the impact flux in the inner solar system. The basin morphology and morphometry depend on impactor size, mass, and velocity as well as the thermal state of the lunar lithosphere which is a function of the cooling history. Erosion by superimposed impact bombardment has altered the surface expression of basin structures over time, making it difficult to determine the size unequivocally solely based on topographic expression. The gravity signature of basins is thought to be a less altered measure of the size of impact structures. By a systematic study of basin formation using the iSALE-2D shock-physics code, we investigate the influence of the lunar thermal state and different impactor properties on the transient crater and final basin size and on the resulting gravity anomaly. As constraints we use gravity data of 16 farside basins and their assumed formation ages to estimate the subsurface temperature related to the cooling history of the Moon. Our modeling results confirm that the thermal state affects the basin formation process and the basin sizes significantly. We provide quantitative relationships between the observed gravity signal, the different basin sizes, and the impactor diameter considering the thermal state of the Moon upon impact, which correlates with the formation ages or periods in the literature. Our study allows for estimating the impactor size from the observed gravity field if the formation age and, thus, the thermal state of the lithosphere is approximately known.
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spelling curtin-20.500.11937-901892023-02-23T07:04:11Z Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature Lompa, T. Wünnemann, K. Wahl, D. Padovan, S. Miljkovic, Katarina Science & Technology Physical Sciences Geochemistry & Geophysics Moon impact basins GRAIL impact cratering HYDROCODE SIMULATIONS ORIENTALE BASIN IMPACT MOON BOMBARDMENT CHRONOLOGY RECOVERY TIMELINE ORIGIN MANTLE Impact basins on the Moon can serve as a benchmark for timing and intensity of the impact flux in the inner solar system. The basin morphology and morphometry depend on impactor size, mass, and velocity as well as the thermal state of the lunar lithosphere which is a function of the cooling history. Erosion by superimposed impact bombardment has altered the surface expression of basin structures over time, making it difficult to determine the size unequivocally solely based on topographic expression. The gravity signature of basins is thought to be a less altered measure of the size of impact structures. By a systematic study of basin formation using the iSALE-2D shock-physics code, we investigate the influence of the lunar thermal state and different impactor properties on the transient crater and final basin size and on the resulting gravity anomaly. As constraints we use gravity data of 16 farside basins and their assumed formation ages to estimate the subsurface temperature related to the cooling history of the Moon. Our modeling results confirm that the thermal state affects the basin formation process and the basin sizes significantly. We provide quantitative relationships between the observed gravity signal, the different basin sizes, and the impactor diameter considering the thermal state of the Moon upon impact, which correlates with the formation ages or periods in the literature. Our study allows for estimating the impactor size from the observed gravity field if the formation age and, thus, the thermal state of the lithosphere is approximately known. 2021 Journal Article http://hdl.handle.net/20.500.11937/90189 10.1029/2021JE006908 English http://creativecommons.org/licenses/by/4.0/ AMER GEOPHYSICAL UNION fulltext
spellingShingle Science & Technology
Physical Sciences
Geochemistry & Geophysics
Moon
impact basins
GRAIL
impact cratering
HYDROCODE SIMULATIONS
ORIENTALE BASIN
IMPACT
MOON
BOMBARDMENT
CHRONOLOGY
RECOVERY
TIMELINE
ORIGIN
MANTLE
Lompa, T.
Wünnemann, K.
Wahl, D.
Padovan, S.
Miljkovic, Katarina
Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title_full Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title_fullStr Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title_full_unstemmed Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title_short Numerical Investigation of Lunar Basin Formation Constrained by Gravity Signature
title_sort numerical investigation of lunar basin formation constrained by gravity signature
topic Science & Technology
Physical Sciences
Geochemistry & Geophysics
Moon
impact basins
GRAIL
impact cratering
HYDROCODE SIMULATIONS
ORIENTALE BASIN
IMPACT
MOON
BOMBARDMENT
CHRONOLOGY
RECOVERY
TIMELINE
ORIGIN
MANTLE
url http://hdl.handle.net/20.500.11937/90189