Geology of the Gusev cratered plains from the Spirit rover transverse -: art. no. E02S07

被引:113
作者
Golombek, MP [1 ]
Crumpler, LS
Grant, JA
Greeley, R
Cabrol, NA
Parker, TJ
Rice, JW
Ward, JG
Arvidson, RE
Moersch, JE
Fergason, RL
Christensen, PR
Castaño, A
Castaño, R
Haldemann, AFC
Li, R
Bell, JF
Squyres, SW
机构
[1] CALTECH, Jet Propuls Lab, Pasadena, CA 91125 USA
[2] New Mexico Museum Nat Hist & Sci, Albuquerque, NM USA
[3] Smithsonian Inst, Washington, DC 20560 USA
[4] Arizona State Univ, Dept Geol Sci, Tempe, AZ USA
[5] NASA, Ames Res Ctr, Moffett Field, CA 94035 USA
[6] Washington Univ, Dept Earth & Planetary Sci, St Louis, MO 63130 USA
[7] Univ Tennessee, Dept Geol Sci, Knoxville, TN 37996 USA
[8] Ohio State Univ, Dept Civil & Environm Engn & Geodet Sci, Columbus, OH 43210 USA
[9] Cornell Univ, Dept Astron, Ithaca, NY 14853 USA
关键词
D O I
10.1029/2005JE002503
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 cratered plains of Gusev traversed by Spirit are generally low-relief rocky plains dominated by impact and eolian processes. Ubiquitous shallow, soil-filled, circular depressions, called hollows, are modified impact craters. Rocks are dark, fine-grained basalts, and the upper 10 m of the cratered plains appears to be an impact-generated regolith developed over intact basalt flows. Systematic field observations across the cratered plains identified vesicular clasts and rare scoria similar to original lava flow tops, consistent with an upper inflated surface of lava flows with adjacent collapse depressions. Crater and hollow morphometry are consistent with most being secondaries. The size-frequency distribution of rocks > 0.1 m diameter generally follows exponential functions similar to other landing sites for total rock abundances of 5-35%. Systematic clast counts show that areas with higher rock abundance and more large rocks have higher thermal inertia. Plains with lower thermal inertia have fewer rocks and substantially more pebbles that are well sorted and evenly spaced, similar to a desert pavement or lag. Eolian bed forms (ripples and wind tails) have coarse surface lags, and many are dust covered and thus likely inactive. Deflation of the surface similar to 5-25 cm likely exposed two-toned rocks and elevated ventifacts and transported fines into craters creating the hollows. This observed redistribution yields extremely slow average erosion rates of similar to 0.03 nm/yr and argues for very little long-term net change of the surface and a dry and desiccating environment similar to today's since the Hesperian (or similar to 3 Ga).
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共 80 条
[1]  
Allen J.R.L., 1985, Principles of Physical Sedimentology
[2]   DIFFERENTIAL AEOLIAN REDISTRIBUTION RATES ON MARS [J].
ARVIDSON, R ;
GUINNESS, E ;
LEE, S .
NATURE, 1979, 278 (5704) :533-535
[3]   Overview of the Spirit Mars Exploration Rover Mission to Gusev Crater:: Landing site to Backstay Rock in the Columbia Hills -: art. no. E02S01 [J].
Arvidson, RE ;
Squyres, SW ;
Anderson, RC ;
Bell, JF ;
Blaney, D ;
Brückner, J ;
Cabrol, NA ;
Calvin, WM ;
Carr, MH ;
Christensen, PR ;
Clark, BC ;
Crumpler, L ;
Des Marais, DJ ;
de Souza, PA ;
d'Uston, C ;
Economou, T ;
Farmer, J ;
Farrand, WH ;
Folkner, W ;
Golombek, M ;
Gorevan, S ;
Grant, JA ;
Greeley, R ;
Grotzinger, J ;
Guinness, E ;
Hahn, BC ;
Haskin, L ;
Herkenhoff, KE ;
Hurowitz, JA ;
Hviid, S ;
Johnson, JR ;
Klingelhöfer, G ;
Knoll, AH ;
Landis, G ;
Leff, C ;
Lemmon, M ;
Li, R ;
Madsen, MB ;
Malin, MC ;
McLennan, SM ;
McSween, HY ;
Ming, DW ;
Moersch, J ;
Morris, RV ;
Parker, T ;
Rice, JW ;
Richter, L ;
Rieder, R ;
Rodionov, DS ;
Schröder, C .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2006, 111 (E2)
[4]   Localization and physical properties experiments conducted by Spirit at Gusev crater [J].
Arvidson, RE ;
Anderson, RC ;
Bartlett, P ;
Bell, JF ;
Blaney, D ;
Christensen, PR ;
Chu, P ;
Crumpler, L ;
Davis, K ;
Ehlmann, BL ;
Fergason, R ;
Golombek, MP ;
Gorevan, S ;
Grant, JA ;
Greeley, R ;
Guinness, EA ;
Haldemann, AFC ;
Herkenhoff, K ;
Johnson, J ;
Landis, G ;
Li, R ;
Lindemann, R ;
McSween, H ;
Ming, DW ;
Myrick, T ;
Richter, L ;
Seelos, FP ;
Squyres, SW ;
Sullivan, RJ ;
Wang, A ;
Wilson, J .
SCIENCE, 2004, 305 (5685) :821-824
[5]   Pancam multispectral imaging results from the Spirit Rover at Gusev crater [J].
Bell, JF ;
Squyres, SW ;
Arvidson, RE ;
Arneson, HM ;
Bass, D ;
Blaney, D ;
Cabrol, N ;
Calvin, W ;
Farmer, J ;
Farrand, WH ;
Goetz, W ;
Golombek, M ;
Grant, JA ;
Greeley, R ;
Guinness, E ;
Hayes, AG ;
Hubbard, MYH ;
Herkenhoff, KE ;
Johnson, MJ ;
Johnson, JR ;
Joseph, J ;
Kinch, KM ;
Lemmon, MT ;
Li, R ;
Madsen, MB ;
Maki, JN ;
Malin, M ;
McCartney, E ;
McLennan, S ;
McSween, HY ;
Ming, DW ;
Moersch, JE ;
Morris, RV ;
Dobrea, EZN ;
Parker, TJ ;
Proton, J ;
Rice, JW ;
Seelos, F ;
Soderblom, J ;
Soderblom, LA ;
Sohl-Dickstein, JN ;
Sullivan, RJ ;
Wolff, MJ ;
Wang, A .
SCIENCE, 2004, 305 (5685) :800-806
[6]  
BERNARD DE, 2001, AM I AER ASTR SPAC 2
[7]   THE ORIGIN OF FLUVIAL VALLEYS AND EARLY GEOLOGIC HISTORY, AEOLIS QUADRANGLE, MARS [J].
BRAKENRIDGE, GR .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1990, 95 (B11) :17289-17308
[8]   DERIVATION OF THE WEIBULL DISTRIBUTION BASED ON PHYSICAL PRINCIPLES AND ITS CONNECTION TO THE ROSIN-RAMMLER AND LOGNORMAL DISTRIBUTIONS [J].
BROWN, WK ;
WOHLETZ, KH .
JOURNAL OF APPLIED PHYSICS, 1995, 78 (04) :2758-2763
[9]   Exploring Gusev Crater with Spirit: Review of science objectives and testable hypotheses [J].
Cabrol, NA ;
Grin, EA ;
Carr, MH ;
Sutter, B ;
Moore, JM ;
Farmer, JD ;
Greeley, R ;
Kuzmin, RO ;
DesMarais, DJ ;
Kramer, MG ;
Newsom, H ;
Barber, C ;
Thorsos, I ;
Tanaka, KL ;
Barlow, NG ;
Fike, DA ;
Urquhart, ML ;
Grigsby, B ;
Grant, FD ;
de Goursac, O .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2003, 108 (E12)
[10]   Ma'adim Vallis revisited through new topographic data: Evidence for an ancient intravalley lake [J].
Cabrol, NA ;
Grin, EA ;
Dawidowicz, G .
ICARUS, 1996, 123 (02) :269-283