Water vapor diffusion in Mars subsurface environments

被引:93
作者
Hudson, Troy L. [1 ]
Aharonson, Oded
Schorghofer, Norbert
Farmer, Crofton B.
Hecht, Michael H.
Bridges, Nathan T.
机构
[1] CALTECH, Div Geol & Planetary Sci, Pasadena, CA 91125 USA
[2] CALTECH, Jet Prop Lab, Pasadena, CA 91125 USA
关键词
D O I
10.1029/2006JE002815
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] The diffusion coefficient of water vapor in unconsolidated porous media is measured for various soil simulants at Mars-like pressures and subzero temperatures. An experimental chamber which simultaneously reproduces a low-pressure, low-temperature, and low-humidity environment is used to monitor water flux from an ice source through a porous diffusion barrier. Experiments are performed on four types of simulants: 40 - 70 mu m glass beads, sintered glass filter disks, 1 - 3 mu m dust ( both loose and packed), and JSC Mars - 1. A theoretical framework is presented that applies to environments that are not necessarily isothermal or isobaric. For most of our samples, we find diffusion coefficients in the range of 2.8 to 5.4 cm(2) s(-1) at 600 Pascal and 260 K. This range becomes 1.9 - 4.7 cm(2) s(-1) when extrapolated to a Mars-like temperature of 200 K. Our preferred value for JSC Mars - 1 at 600 Pa and 200 K is 3.7 +/- 0.5 cm(2) s(-1). The tortuosities of the glass beads is about 1.8. Packed dust displays a lower mean diffusion coefficient of 0.38 +/- 0.26 cm(2) s(-1), which can be attributed to transition to the Knudsen regime where molecular collisions with the pore walls dominate. Values for the diffusion coefficient and the variation of the diffusion coefficient with pressure are well matched by existing models. The survival of shallow subsurface ice on Mars and the providence of diffusion barriers are considered in light of these measurements.
引用
收藏
页数:27
相关论文
共 73 条
[1]  
Allen CC, 1998, EOS T AGU, V79, P405, DOI DOI 10.1029/98E000309
[2]  
ANDERSON PS, 1995, J ATMOS OCEAN TECH, V12, P662, DOI 10.1175/1520-0426(1995)012<0662:MFTBOH>2.0.CO
[3]  
2
[4]  
[Anonymous], 1972, J PHYS CHEM A, DOI DOI 10.1063/1.3253094)
[5]   THE MARTIAN SURFACE AS IMAGED, SAMPLED, AND ANALYZED BY THE VIKING LANDERS [J].
ARVIDSON, RE ;
GOODING, JL ;
MOORE, HJ .
REVIEWS OF GEOPHYSICS, 1989, 27 (01) :39-60
[6]  
BOSE NK, 1955, T INDIAN I CHEM ENGR, V8, P67
[7]   Distribution of hydrogen in the near surface of Mars:: Evidence for subsurface ice deposits [J].
Boynton, WV ;
Feldman, WC ;
Squyres, SW ;
Prettyman, TH ;
Brückner, J ;
Evans, LG ;
Reedy, RC ;
Starr, R ;
Arnold, JR ;
Drake, DM ;
Englert, PAJ ;
Metzger, AE ;
Mitrofanov, I ;
Trombka, JI ;
d'Uston, C ;
Wänke, H ;
Gasnault, O ;
Hamara, DK ;
Janes, DM ;
Marcialis, RL ;
Maurice, S ;
Mikheeva, I ;
Taylor, GJ ;
Tokar, R ;
Shinohara, C .
SCIENCE, 2002, 297 (5578) :81-85
[8]   REGIONAL DUST DEPOSITS ON MARS - PHYSICAL-PROPERTIES, AGE, AND HISTORY [J].
CHRISTENSEN, PR .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1986, 91 (B3) :3533-3545
[9]   THE STABILITY OF GROUND ICE IN THE EQUATORIAL REGION OF MARS [J].
CLIFFORD, SM ;
HILLEL, D .
JOURNAL OF GEOPHYSICAL RESEARCH, 1983, 88 (NB3) :2456-2474
[10]   KNUDSEN DIFFUSION - THE EFFECT OF SMALL PORE-SIZE AND LOW GAS-PRESSURE ON GASEOUS TRANSPORT IN SOIL [J].
CLIFFORD, SM ;
HILLEL, D .
SOIL SCIENCE, 1986, 141 (04) :289-297