Selenophysics and models of the lunar three-layered mantle

The paper focuses on analyzing the data produced by the modern space missions. The purpose of the work is to analyze the lunar gravitational field and dynamic figure, problem of the lunar core existence and to determine petrologic and geophysical parameters of the composition and structure of the lu...

Full description

Saved in:
Bibliographic Details
Main Authors: E.V. Kronrod, Y.A. Nefedyev, V.A. Kronrod, O.L. Kuskov, A.O. Andreev
Format: Article
Language:English
Published: Kazan Federal University 2019-03-01
Series:Учёные записки Казанского университета: Серия Физико-математические науки
Subjects:
Online Access:https://kpfu.ru/uz-eng-phm-2019-1-2.html
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1841563290693533696
author E.V. Kronrod
Y.A. Nefedyev
V.A. Kronrod
O.L. Kuskov
A.O. Andreev
author_facet E.V. Kronrod
Y.A. Nefedyev
V.A. Kronrod
O.L. Kuskov
A.O. Andreev
author_sort E.V. Kronrod
collection DOAJ
description The paper focuses on analyzing the data produced by the modern space missions. The purpose of the work is to analyze the lunar gravitational field and dynamic figure, problem of the lunar core existence and to determine petrologic and geophysical parameters of the composition and structure of the lunar mantle using computer simulation. The analysis of space observations has shown that the real physical figure of the Moon is a more complex system than the model that can be described by a triaxial ellipsoid; at the same time, absolute values and orientation of the inertia moments can be determined neither from space observations nor from ground-based ones. Only the combinations of the inertia moments can be determined. On the basis of the study of trajectories of seismic waves passing and features of their reflection from the lunar inner layers produced by the Apollo mission's seismographs, the composition and structure of the lunar core layers at various depths have been determined. The results of the lunar core studies confirm the hypothesis that the Moon was formed 4.5 billion years ago as a result of the Earth's collision with a large space object. Petrologic and geophysical investigation includes the solution of two problems. The first one is the construction of a three-layered lunar mantle chemical composition model on the basis of a joint inversion of gravitational, seismic, and petrologic and geochemical data. The second problem consists in the revelation of a degree of the mantle reservoirs' chemical homogeneity, namely whether the mantle is homogeneous or stratified by chemical composition with different concentrations of petrogenic elements in various zones of the mantle. Based on the inversion of gravitational and seismic data, inherently coherent models of chemical composition, mineralogy, and lunar three-layered mantle rates have been developed. The results of the simulation have shown that the models of the lunar mantle's thermal state are enriched by SiO2, FeO and depleted by MgO in relation to the primitive Earth's mantle, which indicates the significant distinction between the compositions of the Earth and Moon.
format Article
id doaj-art-5ae9085c423c4a45bd095a2210c3cbe5
institution Kabale University
issn 2541-7746
2500-2198
language English
publishDate 2019-03-01
publisher Kazan Federal University
record_format Article
series Учёные записки Казанского университета: Серия Физико-математические науки
spelling doaj-art-5ae9085c423c4a45bd095a2210c3cbe52025-01-03T00:04:45ZengKazan Federal UniversityУчёные записки Казанского университета: Серия Физико-математические науки2541-77462500-21982019-03-011611243810.26907/2541-7746.2019.1.24-38Selenophysics and models of the lunar three-layered mantleE.V. Kronrod0Y.A. Nefedyev1V.A. Kronrod2O.L. Kuskov3A.O. Andreev4Vernadsky Institute of Geochemistry and Analytical Chemistry, Russian Academy of Sciences, Moscow, 119991 RussiaKazan Federal University, Kazan, 420008 RussiaVernadsky Institute of Geochemistry and Analytical Chemistry, Russian Academy of Sciences, Moscow, 119991 RussiaVernadsky Institute of Geochemistry and Analytical Chemistry, Russian Academy of Sciences, Moscow, 119991 RussiaKazan Federal University, Kazan, 420008 RussiaThe paper focuses on analyzing the data produced by the modern space missions. The purpose of the work is to analyze the lunar gravitational field and dynamic figure, problem of the lunar core existence and to determine petrologic and geophysical parameters of the composition and structure of the lunar mantle using computer simulation. The analysis of space observations has shown that the real physical figure of the Moon is a more complex system than the model that can be described by a triaxial ellipsoid; at the same time, absolute values and orientation of the inertia moments can be determined neither from space observations nor from ground-based ones. Only the combinations of the inertia moments can be determined. On the basis of the study of trajectories of seismic waves passing and features of their reflection from the lunar inner layers produced by the Apollo mission's seismographs, the composition and structure of the lunar core layers at various depths have been determined. The results of the lunar core studies confirm the hypothesis that the Moon was formed 4.5 billion years ago as a result of the Earth's collision with a large space object. Petrologic and geophysical investigation includes the solution of two problems. The first one is the construction of a three-layered lunar mantle chemical composition model on the basis of a joint inversion of gravitational, seismic, and petrologic and geochemical data. The second problem consists in the revelation of a degree of the mantle reservoirs' chemical homogeneity, namely whether the mantle is homogeneous or stratified by chemical composition with different concentrations of petrogenic elements in various zones of the mantle. Based on the inversion of gravitational and seismic data, inherently coherent models of chemical composition, mineralogy, and lunar three-layered mantle rates have been developed. The results of the simulation have shown that the models of the lunar mantle's thermal state are enriched by SiO2, FeO and depleted by MgO in relation to the primitive Earth's mantle, which indicates the significant distinction between the compositions of the Earth and Moon.https://kpfu.ru/uz-eng-phm-2019-1-2.htmlselenophysicspetrology and geochemistrylunar internal structure models
spellingShingle E.V. Kronrod
Y.A. Nefedyev
V.A. Kronrod
O.L. Kuskov
A.O. Andreev
Selenophysics and models of the lunar three-layered mantle
Учёные записки Казанского университета: Серия Физико-математические науки
selenophysics
petrology and geochemistry
lunar internal structure models
title Selenophysics and models of the lunar three-layered mantle
title_full Selenophysics and models of the lunar three-layered mantle
title_fullStr Selenophysics and models of the lunar three-layered mantle
title_full_unstemmed Selenophysics and models of the lunar three-layered mantle
title_short Selenophysics and models of the lunar three-layered mantle
title_sort selenophysics and models of the lunar three layered mantle
topic selenophysics
petrology and geochemistry
lunar internal structure models
url https://kpfu.ru/uz-eng-phm-2019-1-2.html
work_keys_str_mv AT evkronrod selenophysicsandmodelsofthelunarthreelayeredmantle
AT yanefedyev selenophysicsandmodelsofthelunarthreelayeredmantle
AT vakronrod selenophysicsandmodelsofthelunarthreelayeredmantle
AT olkuskov selenophysicsandmodelsofthelunarthreelayeredmantle
AT aoandreev selenophysicsandmodelsofthelunarthreelayeredmantle