Space weathering effects on lunar cold trap deposits

被引:81
作者
Crider, DH
Vondrak, RR
机构
[1] Catholic Univ Amer, Dept Phys, Washington, DC 20064 USA
[2] NASA, Extraterr Phys Lab, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
关键词
Lunar polar ice; lunar cold traps; lunar space weathering; lunar regolith processes; lunar gardening simulation; lunar volatiles;
D O I
10.1029/2002JE002030
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
[1] Both steady and episodic sources have been proposed as sources of hydrogen observed by Lunar Prospector in association with the regions of permanent shadow at the poles of the Moon. Either source could supply significant quantities of water to the poles. However, space weathering processes affect the retention of water in the cold traps. We investigate those effects by simulating the evolution of a column of regolith in the region of permanent shadow over time. We determine the hydrogen concentration as a function of depth using a Monte Carlo model of discrete impacts and of delivery from the solar wind. We treat the delivery, sublimation, sputtering, and very small scale impacts as continual processes. Comparing the amount of water delivered to the poles to the amount remaining after space weathering, we find a retention efficiency of 5.6%. The retention efficiency of the polar cold traps is adequate for preserving volatile deposits over long periods of time. The average hydrogen concentration in the regolith column is 4100 ppm in the top meter after 1 Gyr. This is a saturation level in the regolith. Increasing the amount of time deepens the enriched layer but does not lead to increased concentrations. In 1 Gyr, about 1.6 m of the regolith is gardened. Therefore the top meter, which is probed by the neutron spectroscopy technique, has reached steady state in the simulations. The 4100 ppm saturation level is about half of the amount of hydrogen inferred from the Lunar Prospector neutron data.
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页数:11
相关论文
共 46 条
[1]  
[Anonymous], SPUTTERING PARTICLE
[2]   ICE IN THE LUNAR POLAR REGIONS [J].
ARNOLD, JR .
JOURNAL OF GEOPHYSICAL RESEARCH, 1979, 84 (NB10) :5659-5668
[3]   SPUTTERING MECHANISM FOR LOW-ENERGY LIGHT-IONS [J].
BEHRISCH, R ;
MADERLECHNER, G ;
SCHERZER, BMU ;
ROBINSON, MT .
APPLIED PHYSICS, 1979, 18 (04) :391-398
[4]  
BEHRISCH R, 1991, SPUTTERING PARTICLE, V3, P1
[5]   MONTE-CARLO MODEL FOR EXPOSURE HISTORY OF LUNAR DUST GRAINS IN ANCIENT SOLAR-WIND [J].
BORG, J ;
COMSTOCK, GM ;
LANGEVIN, Y ;
MAURETTE, M ;
JOUFFREY, B ;
JOURET, C .
EARTH AND PLANETARY SCIENCE LETTERS, 1976, 29 (01) :161-174
[6]   Permanent shadow in simple craters near the lunar poles [J].
Bussey, DBJ ;
Lucey, PG ;
Steutel, D ;
Robinson, MS ;
Spudis, PD ;
Edwards, KD .
GEOPHYSICAL RESEARCH LETTERS, 2003, 30 (06) :11-1
[7]   The migration of volatiles on the surfaces of Mercury and the Moon [J].
Butler, BJ .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 1997, 102 (E8) :19283-19291
[8]  
BUTLER BJ, 1994, THESIS CALTECH PASAD
[9]   The solar wind as a possible source of lunar polar hydrogen deposits [J].
Crider, DH ;
Vondrak, RR .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2000, 105 (E11) :26773-26782
[10]   Hydrogen migration to the lunar poles by solar wind bombardment of the moon [J].
Crider, DH ;
Vondrak, RR .
LUNAR EXPLORATION 2000, 2002, 30 (08) :1869-1874