Published January 1, 2014
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Stable (H, O, C) and noble-gas (He and Ar) isotopic compositions from calcite and fluorite in the Speewah Dome, Kimberley Region, Western Australia: implications for the conditions of crystallization and evidence for the influence of crustal-mantle fluid mixing
Creators
- 1. Hungarian Acad Sci, Res Ctr Astron & Earth Sci, Inst Geol & Geochem Res, H-1112 Budapest, Hungary
- 2. C Trident Capital Ltd, Perth, WA 6000, Australia
- 3. Dokuz Eylul Univ, Dept Geol, TR-35160 Izmir, Turkey
- 4. C King River Copper Ltd, Speewah Res Project, Perth, WA 6000, Australia
- 5. Univ Western Australia, ARC Ctr Core Crust Fluid Syst, Ctr Explorat Targeting, Crawley, WA 6009, Australia
- 6. Hungarian Acad Sci, Inst Nucl Res, Hertelendi Lab Environm Studies, H-4026 Debrecen, Hungary
- 7. Eotvos Lorand Univ, Inst Geog & Earth Sci, Dept Petrol & Geochem, Lithosphere Fluid Res Lab, H-1117 Budapest, Hungary
- 8. Western Australian Museum, Dept Earth & Planetary Sci, Welshpool Dc, WA 6986, Australia
Description
In this study, the C-O-isotopic data from calcite at Yungul and Wilmott (Speewah. Western-Australia) are integrated with microthermometry, H2O-, CO2-content and H-He-Ar-isotopic data from fluid inclusions in genetically related calcite and fluorite to map the origin and crystallization paths of the fluids. In addition to the hydrogen isotopic compositions of fluid inclusions in fluorite, oxygen isotopic compositions were also determined by cavity ring-down spectroscopy. The geochemical data suggest mixing of a CO2-dominated mantle fluid and a H2O-domintated crustal brine. The fluid produced by this mixing is characterized by radiogenic (crustal-like) He-3/He-4 ratios, crustal-like dD values, relatively high salinity (19-24wt.% NaCl eq.), moderate homogenization temperatures (150-450 degrees C) and mantle-like CO2/He-3 ratios. Moreover, the large isotopic and elemental variations found in calcite indicate that its formation was accompanied by an extensive degassing (open system) leading to a decrease in dD and an increase in the CO2/He-3 values relative to the starting fluid composition. This degassing is consistent with the fluidal- and breccia-like texture of calcite observed in the field. In contrast, the fluorite which has coarse-grained banded to vughy textures formed in a passive aqueous system. Apparently the fluid that formed the fluorite has the same origin as the calcite, but the higher water content and the more radiogenic He-3/He-4 ratios reflect a greater involvement of crustal fluids. The historical description of the calcite-fluorite system in the Speewah area as "carbonatite" is now considered inappropriate because there is no evidence that crystallization is dominated by magmatic processes.
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