Rock spatial densities on the rims of the Tycho secondary craters in Mare Nectaris
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- Type
- article
- Published
- 2018-04-01
- Cited by
- 7
- References
- 11
- OpenAlex
- https://openalex.org/W2792375831
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:125352170
Keywords
Impact crater, Geology, Lunar craters, Astrobiology, Physics
References
- Survival times of meter-sized rock boulders on the surface of airless bodies
- Geologic characteristics of the Luna 17/Lunokhod 1 and Chang'E-3/Yutu landing sites, Northwest Mare Imbrium of the Moon
- Apollo 17 Seismic Profiling: Probing the Lunar Crust
- The velocity structure of the lunar crust
- Survival times of meter-sized boulders on the surface of the Moon
- Impact Cratering: A Geologic Process
- The origin of lunar crater rays
- Morphometric studies of the Copernicus and Tycho secondary craters on the moon: Dependence of crater degradation rate on crater size
- Correlations between ejecta boulder spatial density of small lunar craters and the crater age
- On the evolution rate of small lunar craters.
- Stratigraphy and Isotope Ages of Lunar Geologic Units: Chronological Standard for the Inner Solar System
Cited by
- Rock spatial densities on the rims and interiors of a group of Copernicus secondary craters
- A reanalysis of the relationship between the size of boulders and craters in lunar surface
- Boulder Distributions Around Young, Small Lunar Impact Craters and Implications for Regolith Production Rates and Landing Site Safety
- Analysis of boulders population around a young crater using very high resolution image of Orbiter High Resolution Camera (OHRC) on board Chandrayaan-2 mission
- Relationship of the spatial distribution between craters and rocks in the Chang'e−5 landing area based on landing camera images
- Age estimation and boulder population analysis of the West crater at Apollo 11 landing site using Orbiter High Resolution Camera on board Chandrayaan-2 mission
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