First two-way laser ranging to a lunar orbiter: infrared observations from the Grasse station to LRO’s retro-reflector array
Name
40623_2020_Article_1243.pdf
Size
2.78 MB
Format
Adobe PDF
Checksum (MD5)
8dc6d49c95e966486c612aca8e3c3cc3
Author(s) • • • • • • • • •
Mazarico, Erwan
Sun, Xiaoli
Torre, Jean-Marie
Courde, Clément
Chabé, Julien
Aimar, Mourad
Mariey, Hervé
Maurice, Nicolas
Barker, Michael K
Mao, Dandan
Date Issued
August 6, 2020
Publisher
Springer Berlin Heidelberg
Citation
Earth, Planets and Space. 2020 Aug 06;72(1):113
Version
Final published version
Abstract
Abstract
We present the results of the first series of successful two-way laser ranging experiments from a ground station, the Lunar Laser Ranging (LLR) station in Grasse, France, to a spacecraft at lunar distance, the Lunar Reconnaissance Orbiter (LRO). A 15 × 18 × 5 cm, 650-g array of twelve 32-mm diameter solid corner cubes is mounted on its anti-nadir deck. Ranging to this small retro-reflector array onboard a lunar orbiter from a ground station was a challenge compared to ranging to larger lunar surface retro-reflectors. Grasse measured 67 returns in two 6-min sessions on September 4, 2018. Clear returns were also recorded during two additional sessions on August 23–24, 2019 for which active slewing by LRO was performed to bring the array in view of the station. The measured echos yielded range residuals less than 3 cm (two-way time-of-flight RMS < 180 ps) relative to the reconstructed LRO trajectory. This experiment provides a new method of verifying theories of dust accumulation over decades on the lunar surface. It also showed that the use of similar arrays onboard future lunar landers and orbiters can support LLR lunar science goals, particularly with landing sites near the lunar limbs and poles, which would have better sensitivity to lunar orientation.
MIT Department
Massachusetts Institute of Technology. Office of the Vice President for Research
Massachusetts Institute of Technology. Department of Earth, Atmospheric, and Planetary Sciences
Terms of Use
Creative Commons Attribution
Persistent DSpace Link
DOI of Published Version
https://doi.org/10.1186/s40623-020-01243-w