Spatial grain size sorting in eolian ripples and estimation of wind conditions on planetary surfaces: Application to Meridiani Planum, Mars

被引:141
作者
Jerolmack, Douglas J.
Mohrig, David
Grotzinger, John P.
Fike, David A.
Watters, Wesley A.
机构
[1] MIT, Dept Earth Atmospher & Planetary Sci, Cambridge, MA 02139 USA
[2] CALTECH, Pasadena, CA 91125 USA
关键词
D O I
10.1029/2005JE002544
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
The landscape seen by the Mars Exploration Rover (MER) Opportunity at Meridiani Planum is dominated by eolian (wind-blown) ripples with concentrated surface lags of hematitic spherules and fragments. These ripples exhibit profound spatial grain size sorting, with well-sorted coarse-grained crests and poorly sorted, generally finer-grained troughs. These ripples were the most common bed form encountered by Opportunity in its traverse from Eagle Crater to Endurance Crater. Field measurements from White Sands National Monument, New Mexico, show that such coarse-grained ripples form by the different transport modes of coarse- and fine-grain fractions. On the basis of our field study, and simple theoretical and experimental considerations, we show how surface deposits of coarse-grained ripples can be used to place tight constraints on formative wind conditions on planetary surfaces. Activation of Meridiani Planum coarse-grained ripples requires a wind velocity of 70 m/s (at a reference elevation of 1 m above the bed). From images by the Mars Orbiter Camera (MOC) of reversing dust streaks, we estimate that modern surface winds reach a velocity of at least 40 m/s and hence may occasionally activate these ripples. The presence of hematite at Meridiani Planum is ultimately related to formation of concretions during aqueous diagenesis in groundwater environments; however, the eolian concentration of these durable particles may have led to the recognition from orbit of this environmentally significant landing site.
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页数:14
相关论文
共 56 条
[11]   A simple universal equation for grain settling velocity [J].
Ferguson, RI ;
Church, M .
JOURNAL OF SEDIMENTARY RESEARCH, 2004, 74 (06) :933-937
[12]   ORGANIC DETRITUS PARTICLES - INITIATION OF MOTION CRITERIA ON SAND AND GRAVEL BEDS [J].
FISHER, JS ;
SILL, BL ;
CLARK, DF .
WATER RESOURCES RESEARCH, 1983, 19 (06) :1627-1631
[13]   AEOLIAN GRANULE RIPPLE DEPOSITS, NAMIBIA [J].
FRYBERGER, SG ;
HESP, P ;
HASTINGS, K .
SEDIMENTOLOGY, 1992, 39 (02) :319-331
[14]   MICROSCALE TRANSPORT OF SAND-SIZED SOIL AGGREGATES ERODED BY WIND [J].
GILLETTE, D ;
GOODWIN, PA .
JOURNAL OF GEOPHYSICAL RESEARCH, 1974, 79 (27) :4080-4084
[15]   THE EFFECT OF NONERODIBLE PARTICLES ON WIND EROSION OF ERODIBLE SURFACES [J].
GILLETTE, DA ;
STOCKTON, PH .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1989, 94 (D10) :12885-12893
[16]   Selection of the Mars Exploration Rover landing sites [J].
Golombek, MP ;
Grant, JA ;
Parker, TJ ;
Kass, DM ;
Crisp, JA ;
Squyres, SW ;
Haldemann, AFC ;
Adler, M ;
Lee, WJ ;
Bridges, NT ;
Arvidson, RE ;
Carr, MH ;
Kirk, RL ;
Knocke, PC ;
Roncoli, RB ;
Weitz, CM ;
Schofield, JT ;
Zurek, RW ;
Christensen, PR ;
Fergason, RL ;
Anderson, FS ;
Rice, JW .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2003, 108 (E12)
[17]   Field measurements of the flux and speed of wind-blown sand [J].
Greeley, R ;
Blumberg, DG ;
Williams, SH .
SEDIMENTOLOGY, 1996, 43 (01) :41-52
[18]   Windblown dust on Mars: laboratory simulations of flux as a function of surface roughness [J].
Greeley, R ;
Wilson, G ;
Coquilla, R ;
White, B ;
Haberle, R .
PLANETARY AND SPACE SCIENCE, 2000, 48 (12-14) :1349-1355
[19]  
Greeley Ronald., 1985, WIND GEOLOGICAL PROC, DOI 10.1017/CBO9780511573071
[20]   Stratigraphy and sedimentology of a dry to wet eolian depositional system, Burns formation, Meridiani Planum, Mars [J].
Grotzinger, JP ;
Arvidson, RE ;
Bell, JF ;
Calvin, W ;
Clark, BC ;
Fike, DA ;
Golombek, M ;
Greeley, R ;
Haldemann, A ;
Herkenhoff, KE ;
Jolliff, BL ;
Knoll, AH ;
Malin, M ;
McLennan, SM ;
Parker, T ;
Soderblom, L ;
Sohl-Dickstein, JN ;
Squyres, SW ;
Tosca, NJ ;
Watters, WA .
EARTH AND PLANETARY SCIENCE LETTERS, 2005, 240 (01) :11-72