HR: 1340h
AN: B53B-0998 [Abstracts]
TI: Role Of Hydrothermal System At Shallower Depth In 2.77 Ga Alteration Of Mt. Roe Basalt, Pilbara,
Western Australia
AU: * Nedachi, Y
EM: nedachi@jundai.k-junshin.ac.jp
AF: Kagoshima Immaculate Heart University, 2365 Amatatsu, Sendai, 891-0035
Japan
AU: Nedachi, M
EM: nedachi@sci.kagoshima-u.ac.jp
AF: Faculty of Science, Kagoshima University, 1-21-35 Korimoto, Kagoshima, 890-0065
Japan
AU: Taguchi, S
EM: taguchi@sci.fukuoka-u.ac.jp
AF: Faculty of Science, Fukuoka University, 8-19-1 Nanakuma, Zyounan-ku, Fukuoka, 814-0180
Japan
AU: Ohmoto, H
EM: ohmoto@geosc.psu.edu
AF: PSARC, Pennsylvania State University, 435 Deike Bldg. Pennsylvania State University, University Park,
PA 16803
United States
AB:
The sericite-chlorite alteration zone of the 2.77 Ga Mt. Roe basalt near Whim Creek, Pilbara, Western Australia, has been
attracting attention if it is paleo-weathering profile (paleosol) formed under anoxic atmosphere or if it is hydrothermally
altered zone by reduced fluid. It is also interesting in the standpoint of biological activity at late-Archean era, as it has
been reported that the black veins in alteration zone and the sediment above it are characterized by the organic carbons
with d13C values of methanogen and methanotroph. A fresh and consecutive core of Mt Roe basalt including alteration zones,
which was drilled by ABDP (Archean Biosphere Drilling Project) in July 2003, gives new and more detailed insight into this
concern.
The core is ca. 300 m long, and is composed of amygdaloidal/massive basaltic lavas and tuffs with clastic sediments
interbedded. About seventy selected samples were studied mineralogically using microscope, XRD, XGT and EPMA, and were
analyzed chemically for major and trace elements using XRF and ICP-mass.
The results show that (1) the core is composed of at least three lava/tuff units with different Ti/Zr and Zr/Hf ratios which
are separated by thick sedimentary units, (2) the sedimentary units are comprised of sandstone, siltstone and shale, all of
which are black-colored and rich in organic carbon, (3) the strongly sericitized horizons of several meters were recognized
just below these sedimentary units, (4) thin sericitized layers are interbetted in amygdaloidal basalt and tuff horizons, the
major part of which is associated with the fine-grained, black and organic carbon-rich quartz vein, (5) in some parts of
sericitized zone, sulfide, Zn-rich and Ti-REE veins were observed, (6) all of the sericitized zone is characterizes by the
depletion of Fe, Mg, Ca, Na and P and the enrichment of K, (7) several other kinds of veins, such as quartz, calcite, and
chlorite, distribute across the basalt horizon, (8) organic carbons in black vein show d13C values of -40 to -50 per mil
(PDB), and (9) methane was the only gas detected from the fluid inclusions in quartz vein.
These observations suggest the followings, (1) there might be at least two stages of alteration; (2) the first one could be
responsible for the alteration of plagioclase to calcite and mafic minerals to chlorite, for the calcite and chlorite veins,
and for filling up amygdules; (3) the second one might relates to submarine hydrothermal activity at shallower depth, (4) the
hydrothermal fluid might circulate through depositing sediment and top of erupted basalt/tuff, (5) methanogene could
inhabitate in hydrothermal vein producing methane and made the fluid strongly reducing, and (6) methanotroph could inhabitate
around seafloor.
As the black hydrothermal vein was not observed in uppermost massive lava unit, the timing of this alteration would have been
essentially concurrent with the volcanic activity. This is concordant with the previously reported SHRIMP age of around 2.8
Ga for euhedral apatite minerals in hydrothermal vein.
DE: 0325 Evolution of the atmosphere
DE: 1000 GEOCHEMISTRY (New field, replaces Rock Chemistry)
SC: Biogeosciences [B]
MN: 2004 AGU Fall Meeting