Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Geologic Map of the Mare Vaporum Region - Geologic Evolution and Resource Assessment 

View through CrossRef
Introduction: Upcoming lunar missions aim to combine technical demonstrations with scientific outcomes. In particular, geologically diverse regions on the lunar nearside offer valuable opportunities for the development of in‑situ resource utilization (ISRU), which could reduce dependence on Earth for future lunar exploration [1].To investigate a promising target for future missions, we produced a new geologic map of the Mare Vaporum region (13.20°N/4.09°E) at a scale of 1:125,000. Two distinct dark mantling deposits were identified that exhibit high concentrations of FeO (~15-19 wt.%) and TiO₂ (~4-8 wt.%), indicating the presence of ilmenite (FeTiO₃). Ilmenite-bearing materials may enable the extraction of oxygen and helium‑3 [2]. As a result, Mare Vaporum is well suited for future ISRU efforts and, due to its diverse geology (Figure 1), also provides an excellent opportunity to better understand the Moon’s volcanic and tectonic history.Method: The different geologic units were distinguished based on variations in relative albedo, topography, and morphology. Datasets used include Kaguya SELenological and Engineering Explorer (SELENE) Terrain Camera (TC) images and Kaguya TC digital elevation models (DEMs), both with pixel scales of ~10 m/px [3], as well as spectral data such as the Clementine UVVIS color ratio map [4] and Kaguya Lunar Multiband Imager (MI) maps ([5], [6]). Mapping was carried out following the stratigraphic scheme of [7] and adheres to the mapping standards described in [8] and the Planetary Geologic Mapping Protocol [9].Results: The Mare Vaporum region shows diverse geologic units with exposed materials spanning from the Nectarian period to the Copernican period.Figure 1: Geologic map of the Mare Vaporum region, mapped at a scale of 1:125.000.Terra material (Nt): A prominent elongated ridge in the eastern portion of the study region is interpreted as Nectarian terra material.Basin material (Nbm, If): The rim of the Serenitatis basin forms a distinct elevated feature in the northeastern study region. Ejecta deposits from the Imbrium impact event are present in the northern and southern part of the study region and are mapped as the Fra Mauro Formation.Dark mantling material (Id1, Id2): Two dark mantling deposits occur in the region. The underlying topography remains visible at both deposits. FeO concentrations range from ~15-19 wt.%, and the TiO₂ values range from ~4-8 wt.%. The dark mantling deposits are likely represent pyroclastic material from the Imbrian period.Light plains material (Ilp): This unit is characterized by high albedo and flat topography and is interpreted as the result of emplacement of impact‑generated material. It occurs in the southern part of the mapping area and is Imbrian in age.Cratered plains material (Ipc): Compared to the Fra Mauro Formation, this unit shows a lower albedo and a rougher, more heavily cratered morphology. It is located in the southeastern part of the study region and is interpreted as Imbrian in age.Mare material (Im1-7, Em): The majority of the study area is covered with dark and smooth materials with moderate TiO₂ and high FeO concentrations. These areas are interpreted as mare basalts emplaced during the Imbrian and Eratosthenian periods.Crater material (Ic, Ec, Cc): Materials related to impact craters were also identified, including ejecta blankets, central peaks, crater floors, and impact melt. deposits Only craters with diameters of 5 km or greater were mapped individually.Tectonic and volcanic features: A variety of tectonic and volcanic features could be identified, includig domes, pits, irregular mare patches, wrinkle ridges, and graben. Rima Hyginus (Ir), which we mapped as separate geologic unit, is a large graben partly surrounded by dark mantling deposits. Domes, pits, and graben are interpreted as Imbrian in age, while wrinkle ridges formed between the Imbrian and the Eratosthenian periods in the study region. The age of irregular mare patches, such as Ina, remains debated, with proposed ages ranging from Imbrian [10] to Copernican [11].Conclusion: Our new geologic map shows that Mare Vaporum is a promising region for future ISRU efforts, especially due to the presence of dark mantling deposits enriched in FeO and TiO₂. In addition, a variety of geologic units and features is present (e.g., highland and basin materials, mare material, light plains, crater material), which increases the scientific potential for future lunar missions. Domes, pits, and irregular mare patches provide evidence for past volcanism and allow reconstruction of the volcanic evolution of the region. Furthermore, slope and rock abundance analyses indicate that Mare Vaporum is suitable for safe landings.References: [1] Carpenter, J. et al. (2016) Space Policy, 37, 52-57. [2] Hawke, B. R. et al. (1990) Proc. Lunar Planet. Sc. Conf. 20th, p. 249-258. [3] Haruyama, J. et al. (2008) EPS, 60, 243-255. [4] Lucey, P. G. et al. (2000) JGR: Planets, 105(E8). [5] Lemelin, M. et al. (2019) PSS, 165, 230-243. [6] Sato, H. et al. (2017) Icarus, 296, 216-238. [7] Wilhelms, D. E. et al. (1987) USGS, 1348. [8] Federal Geographic Data Committee (2006) FGDC-STD-013-2006. [9] Skinner, J. A. et al. (2022) USGS, TM11-B13. [10] Qiao, L. et al. (2017) Geology, 45(5), 455-458. [11] Braden, S. E. et al. (2014) Nature Geoscience, 7(11), 787-791.
Title: Geologic Map of the Mare Vaporum Region - Geologic Evolution and Resource Assessment 
Description:
Introduction: Upcoming lunar missions aim to combine technical demonstrations with scientific outcomes.
In particular, geologically diverse regions on the lunar nearside offer valuable opportunities for the development of in‑situ resource utilization (ISRU), which could reduce dependence on Earth for future lunar exploration [1].
To investigate a promising target for future missions, we produced a new geologic map of the Mare Vaporum region (13.
20°N/4.
09°E) at a scale of 1:125,000.
Two distinct dark mantling deposits were identified that exhibit high concentrations of FeO (~15-19 wt.
%) and TiO₂ (~4-8 wt.
%), indicating the presence of ilmenite (FeTiO₃).
Ilmenite-bearing materials may enable the extraction of oxygen and helium‑3 [2].
As a result, Mare Vaporum is well suited for future ISRU efforts and, due to its diverse geology (Figure 1), also provides an excellent opportunity to better understand the Moon’s volcanic and tectonic history.
Method: The different geologic units were distinguished based on variations in relative albedo, topography, and morphology.
Datasets used include Kaguya SELenological and Engineering Explorer (SELENE) Terrain Camera (TC) images and Kaguya TC digital elevation models (DEMs), both with pixel scales of ~10 m/px [3], as well as spectral data such as the Clementine UVVIS color ratio map [4] and Kaguya Lunar Multiband Imager (MI) maps ([5], [6]).
Mapping was carried out following the stratigraphic scheme of [7] and adheres to the mapping standards described in [8] and the Planetary Geologic Mapping Protocol [9].
Results: The Mare Vaporum region shows diverse geologic units with exposed materials spanning from the Nectarian period to the Copernican period.
Figure 1: Geologic map of the Mare Vaporum region, mapped at a scale of 1:125.
000.
Terra material (Nt): A prominent elongated ridge in the eastern portion of the study region is interpreted as Nectarian terra material.
Basin material (Nbm, If): The rim of the Serenitatis basin forms a distinct elevated feature in the northeastern study region.
Ejecta deposits from the Imbrium impact event are present in the northern and southern part of the study region and are mapped as the Fra Mauro Formation.
Dark mantling material (Id1, Id2): Two dark mantling deposits occur in the region.
The underlying topography remains visible at both deposits.
FeO concentrations range from ~15-19 wt.
%, and the TiO₂ values range from ~4-8 wt.
%.
The dark mantling deposits are likely represent pyroclastic material from the Imbrian period.
Light plains material (Ilp): This unit is characterized by high albedo and flat topography and is interpreted as the result of emplacement of impact‑generated material.
It occurs in the southern part of the mapping area and is Imbrian in age.
Cratered plains material (Ipc): Compared to the Fra Mauro Formation, this unit shows a lower albedo and a rougher, more heavily cratered morphology.
It is located in the southeastern part of the study region and is interpreted as Imbrian in age.
Mare material (Im1-7, Em): The majority of the study area is covered with dark and smooth materials with moderate TiO₂ and high FeO concentrations.
These areas are interpreted as mare basalts emplaced during the Imbrian and Eratosthenian periods.
Crater material (Ic, Ec, Cc): Materials related to impact craters were also identified, including ejecta blankets, central peaks, crater floors, and impact melt.
deposits Only craters with diameters of 5 km or greater were mapped individually.
Tectonic and volcanic features: A variety of tectonic and volcanic features could be identified, includig domes, pits, irregular mare patches, wrinkle ridges, and graben.
Rima Hyginus (Ir), which we mapped as separate geologic unit, is a large graben partly surrounded by dark mantling deposits.
Domes, pits, and graben are interpreted as Imbrian in age, while wrinkle ridges formed between the Imbrian and the Eratosthenian periods in the study region.
The age of irregular mare patches, such as Ina, remains debated, with proposed ages ranging from Imbrian [10] to Copernican [11].
Conclusion: Our new geologic map shows that Mare Vaporum is a promising region for future ISRU efforts, especially due to the presence of dark mantling deposits enriched in FeO and TiO₂.
In addition, a variety of geologic units and features is present (e.
g.
, highland and basin materials, mare material, light plains, crater material), which increases the scientific potential for future lunar missions.
Domes, pits, and irregular mare patches provide evidence for past volcanism and allow reconstruction of the volcanic evolution of the region.
Furthermore, slope and rock abundance analyses indicate that Mare Vaporum is suitable for safe landings.
References: [1] Carpenter, J.
et al.
(2016) Space Policy, 37, 52-57.
[2] Hawke, B.
R.
et al.
(1990) Proc.
Lunar Planet.
Sc.
Conf.
20th, p.
249-258.
[3] Haruyama, J.
et al.
(2008) EPS, 60, 243-255.
[4] Lucey, P.
G.
et al.
(2000) JGR: Planets, 105(E8).
[5] Lemelin, M.
et al.
(2019) PSS, 165, 230-243.
[6] Sato, H.
et al.
(2017) Icarus, 296, 216-238.
[7] Wilhelms, D.
E.
et al.
(1987) USGS, 1348.
[8] Federal Geographic Data Committee (2006) FGDC-STD-013-2006.
[9] Skinner, J.
A.
et al.
(2022) USGS, TM11-B13.
[10] Qiao, L.
et al.
(2017) Geology, 45(5), 455-458.
[11] Braden, S.
E.
et al.
(2014) Nature Geoscience, 7(11), 787-791.

Related Results

Ages and stratigraphy of mare basalts in Oceanus Procellarum, Mare Nubium, Mare Cognitum, and Mare Insularum
Ages and stratigraphy of mare basalts in Oceanus Procellarum, Mare Nubium, Mare Cognitum, and Mare Insularum
Accurate estimates of mare basalt ages are necessary to place constraints on the duration and the flux of lunar volcanism as well as on the petrogenesis of lunar mare basalts and t...
Geologic Modeling And Visualization Facilitates The Transition From Exploration To Development
Geologic Modeling And Visualization Facilitates The Transition From Exploration To Development
Abstract The development of interactive modeling tools and better integration of seismic and geology allow 3D geologic modeling to play a significant, new role in...
Lunar volcanism: A Geophysical perspective
Lunar volcanism: A Geophysical perspective
The lunar crust has preserved a record of the Moon’s volcanic and magmatic activity through time. While the extrusive maria dominate the volcanic record, little is known ...
Space Weathering Trends at the Mare Moscoviense Swirl
Space Weathering Trends at the Mare Moscoviense Swirl
Introduction:  Swirls are bright albedo features only found on the lunar surface. Almost every swirl is associated with a magnetic anomaly [e.g., 1, 2]. Therefore, a com...
China's Chang'e-5 Landing Site: An Overview
China's Chang'e-5 Landing Site: An Overview
<p><strong>Introduction</strong></p><p>The Chang’e-5 (CE-5) mission is China’s fir...
Geology of Big Bend Ranch State Park, Texas
Geology of Big Bend Ranch State Park, Texas
Big Bend Ranch State Park, the largest in the Texas State Parks System, lies in the rugged Big Bend country of West Texas (figs. 1 and 2). The primary attraction of Big Bend countr...
Terrain-dependent spectral properties of lunar polarisation at small phase angles
Terrain-dependent spectral properties of lunar polarisation at small phase angles
IntroductionThe polarisation of the sunlight reflected by the surface of the Moon contains information about the structural properties of the surficial regolith layer, such as the ...
Geologic Map of Aphrodite Map Area (AMA; I-2476), Venus
Geologic Map of Aphrodite Map Area (AMA; I-2476), Venus
We present a 1:10M scale geologic map of the Aphrodite Map area (AMA) of Venus (0N-57S /60E-80E). Geologic mapping employed NASA Magellan synthetic aperture radar and altimetry dat...

Back to Top