The Lunar Polar Hydrogen Mapper CubeSat Mission

Миссия кубсата Lunar Polar Hydrogen Mapper для исследования полярных областей Луны
C. Hardgrove, R. Starr, I. Lazbin, Alessandra Babuscia, Bob Roebuck, Joe DuBois, Nathaniel Struebel, A. Colaprete, Darrell M. Drake, Erik B. Johnson, James F. Christian, L. E. Heffern, Steve Stem, Sean Parlapiano, Mitchel Wiens, Anthony L. Genova, D. Dunham, Derek Nelson, B. G. Williams, Jeremy Bauman, Patrick Hailey, Tyler O'Brien, Kabir Marwah, Logan Vlieger, J. F. Bell, Tom Prettyman, Teri Crain, E. Cisneros, N. Cluff, Graham Stoddard, Meghan Kaffine
2020-03-01

LunaH-Map CubeSathydrogen mappinglunar South Poleneutron spectrometerwater ice
The Lunar Polar Hydrogen Mapper (LunaH-Map) mission will map the distribution of hydrogen around the lunar South Pole using a miniature neutron spectrometer. The mission builds upon a decade of lunar science, which has revealed both regional and more localized enrichments of water ice near the lunar poles. Localized enrichments are primarily within permanently shadowed regions (PSRs) and craters throughout the South Pole. The spatial extent of these regions is often below the resolution of previous neutron instruments that have flown on lunar missions. The neutron leakage spectrum from planetary surfaces is primarily sensitive to hydrogen abundance in the top meter of regolith, however, for neutron spectrometers with omnidirectional sensitivity, the spatial resolution is limited by the spacecraft orbital altitude above the surface. A low altitude measurement from a distance on the same scale of the PSRs could spatially isolate and constrain the hydrogen enrichments both within and around within those regions. A small spacecraft mission is ideally suited to acquire the low-altitude measurements required to localize hydrogen enrichments using neutron spectroscopy at the lunar South Pole. LunaH-Map will use a solid iodine ion propulsion system, X-Band radio communications through the NASA Deep Space Network, star tracker, Command & Data Handling System, and EPS systems from Blue Canyon Technologies, solar arrays from MMA Designs, LLC, mission design and navigation by KinetX. Spacecraft systems design, integration, qualification, test, and mission operations are performed by Arizona State University, AZ Space Technologies and Qwaltec.
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Low-altitude observations at distances comparable to permanently shadowed regions can spatially isolate and constrain hydrogen enrichments within and around these areas.
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LunaH-Map is designed to map hydrogen distribution near the lunar South Pole using a miniature neutron spectrometer.
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Previous lunar neutron instruments lacked sufficient spatial resolution to resolve many small permanently shadowed regions and localized hydrogen deposits.
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The CubeSat employs solid iodine ion propulsion, X-band Deep Space Network communications, and commercial spacecraft subsystems to enable the low-altitude polar investigation.
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The mission targets localized water-ice enrichments primarily found in permanently shadowed regions and South Pole craters.

Hydrogen enrichments, including water-ice deposits, in the lunar South Pole regolith and permanently shadowed regions

The spatial distribution, localization, and abundance of near-surface hydrogen in and around permanently shadowed regions

Publication Details
Publication Date
2020-03-01
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Authors
C. Hardgrove
R. Starr
I. Lazbin
Alessandra Babuscia
Bob Roebuck
Joe DuBois
Nathaniel Struebel
A. Colaprete
Darrell M. Drake
Erik B. Johnson
James F. Christian
L. E. Heffern
Steve Stem
Sean Parlapiano
Mitchel Wiens
Anthony L. Genova
D. Dunham
Derek Nelson
B. G. Williams
Jeremy Bauman
Patrick Hailey
Tyler O'Brien
Kabir Marwah
Logan Vlieger
J. F. Bell
Tom Prettyman
Teri Crain
E. Cisneros
N. Cluff
Graham Stoddard
Meghan Kaffine
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