A giant, Late Archean lake system: The Meentheena Member (Tumbiana Formation; Fortescue Group), Western Australia

被引:75
作者
Awramik, Stanley M. [1 ]
Buchheim, H. Paul [2 ]
机构
[1] Univ Calif Santa Barbara, Dept Earth Sci, Preston Cloud Res Lab, Santa Barbara, CA 93106 USA
[2] Loma Linda Univ, Lab Limnogeol, Dept Earth & Biol Sci, Loma Linda, CA 92350 USA
关键词
Late Archean; Tumbiana Formation; Meentheena Member; Lacustrine; Stromatolites; FLOOD-BASALT VOLCANISM; PILBARA-CRATON; LACUSTRINE SEDIMENTS; ISOTOPIC COMPOSITION; EPEIRIC SEA; MOUNT JOPE; BASIN; STROMATOLITE; EVOLUTION; GEOCHEMISTRY;
D O I
10.1016/j.precamres.2009.07.005
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The similar to 2720 Ma-old Meentlleena Member of the Tumbiana Formation, Fortescue Group, is a 30-50 m-thick succession of alternating siliciclastic and limestone beds that crop out intermittently over a distance of similar to 680 km across the Pilbara Craton, Western Australia. Limestones of the member consist of flat-pebble (intraformational) conglomerate, oolite, grainstone. calcisiltite, and calcilutite Siliciclastics consist of shale, siltstone, and sandstone. and many of these are tuffaceous Sedimentary structures include abundant symmetrical ripples, ripple cross-stratification, desiccation cracks. teepee structures, and planar to wavy lamination The member is superficially similar in appearance wherever it crops out: however, the correlation of individual beds and units over distances greater than 15 km is problematic There are no regional marker beds. Radiometric ages from tuffaceous units young to the west by a few million years Four lithofacies are defined (a) flat-pebble conglomerate. (b) ripple cross-laminated oolite/grainstone. (c) planar to wavy-laminated calcilutite/calcisiltite. and (d) shale/siltstone. Stromatolites are found in all three of the limestone fades Evaporites are rare and include halite pseudomorphs. The foul lithofacies are generally found in a vertical succession that characterizes a lithofacies association and reflects a deepening upward succession Associations may not have all four lithofacies. but do reflect the same deepening upward pattern The uppermost portions of shale/siltstone fades commonly contain symmetrical ripples and desiccation cracks indicating subaerial exposure Measured sections contain as many as 25 of these parasequences indicating fluctuating water levels Limestone lithology and fades commonly change abruptly laterally (at the meter and greater scale) and vertically (centimeter- to meter-scale) The sedimentary structures. differences and abrupt changes in lithofacies patterns. the inability to correlate confidently between regions, and the differences in age from east to west suggest a complex, diachronous, depositional system of fluctuating water levels in separate bodies of water The limestone is dominated by sedimentary structures indicative of shallow water within wave base; however, it is devoid of evidence of any tidal influence Possibilities for depositional environments include a tideless sea or a lacustrine system Sr-87/Sr-86 values from limestone differ from known Archean marine carbonates REE patterns are decidedly non-marine as well. A lacustrine system is favored for the Meentheena Member based on sedimentary structures, the abruptness of lithologic and fades changes, the fades association, lateral gradation into fluvial deposits. the inability to correlate many units and beds for more than a few to several kilometers, geochemical data, stromatolites. and comparisons with younger lacustrine basins as well as marine successions. There is no single line of evidence that unequivocally establishes a lacustrine origin; however, multiple lines of evidence are collectively consistent with a lacustrine origin The Meentheena Member would therefore represent the oldest known carbonate-rich, lacustrine system. which we call the Meentheena lakes system (C) 2009 Elsevier B V All rights reserved
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页码:215 / 240
页数:26
相关论文
共 122 条
[1]   Stromatolite reef from the Early Archaean era of Australia [J].
Allwood, Abigail C. ;
Walter, Malcolm R. ;
Kamber, Balz S. ;
Marshall, Craig P. ;
Burch, Ian W. .
NATURE, 2006, 441 (7094) :714-718
[2]   Sedimentation rates, basin analysis and regional correlations of three Neoarchaean and Palaeoproterozoic sub-basins of the Kaapvaal craton as inferred from precise U-Pb zircon ages from volcaniclastic sediments [J].
Altermann, W ;
Nelson, DR .
SEDIMENTARY GEOLOGY, 1998, 120 (1-4) :225-256
[3]  
[Anonymous], 2003, PALEOLIMNOLOGY
[4]   THE AGE OF THE FORTESCUE GROUP, HAMERSLEY BASIN, WESTERN-AUSTRALIA, FROM ION MICROPROBE ZIRCON U-PB RESULTS [J].
ARNDT, NT ;
NELSON, DR ;
COMPSTON, W ;
TRENDALL, AF ;
THORNE, AM .
AUSTRALIAN JOURNAL OF EARTH SCIENCES, 1991, 38 (03) :261-281
[5]  
AWIAMIK SM, 2000, CALIFORNIA SAN BERNA, V47, P25
[6]  
AWRAMIK SM, 1993, GEOLOGICAL SOC AM, V25, P357
[7]   A lamellibranch-stromatolite bioherm in the Lower Keuper (Ladinian, Middle Triassic), South Germany [J].
Bachmann, GH .
FACIES, 2002, 46 (1) :83-88
[8]   CALCULATION OF SIMULTANEOUS ISOTOPIC AND TRACE-ELEMENT VARIATIONS DURING WATER-ROCK INTERACTION WITH APPLICATIONS TO CARBONATE DIAGENESIS [J].
BANNER, JL ;
HANSON, GN .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1990, 54 (11) :3123-3137
[9]   The Late Archaean bonanza: metallogenic and environmental consequences of the interaction between mantle plumes, lithospheric tectonics and global cyclicity [J].
Barley, ME ;
Krapez, B ;
Groves, DI ;
Kerrich, R .
PRECAMBRIAN RESEARCH, 1998, 91 (1-2) :65-90
[10]   Late Archean to Early Paleoproterozoic global tectonics, environmental change and the rise of atmospheric oxygen [J].
Barley, ME ;
Bekker, A ;
Krapez, B .
EARTH AND PLANETARY SCIENCE LETTERS, 2005, 238 (1-2) :156-171