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Socio-Economic Objective : Copper Ore Exploration
Field of Research : Igneous and Metamorphic Petrology
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Igneous and Metamorphic Petrology (11)
Geology (7)
Ore Deposit Petrology (7)
Exploration Geochemistry (4)
Geochemistry (4)
Isotope Geochemistry (4)
Geochronology (3)
Inorganic Geochemistry (3)
Tectonics (3)
Structural Chemistry and Spectroscopy (1)
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Copper Ore Exploration (11)
Precious (Noble) Metal Ore Exploration (9)
Expanding Knowledge in the Earth Sciences (5)
Diamond Exploration (2)
Mineral Exploration not elsewhere classified (2)
Zinc Ore Exploration (2)
Expanding Knowledge in the Chemical Sciences (1)
Expanding Knowledge in the Physical Sciences (1)
Iron Ore Exploration (1)
Production of Unrefined Precious Metal Ingots and Concentrates (1)
Titanium Minerals, Zircon, and Rare Earth Metal Ore (e.g. Monazite) Exploration (1)
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Australian Research Council (11)
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  • Researchers (34)
  • Funded Activities (11)
  • Organisations (17)
  • Funded Activity

    ARC Future Fellowships - Grant ID: FT120100766

    Funder
    Australian Research Council
    Funding Amount
    $802,037.00
    Summary
    Geological applications of synchrotron radiation: magmas, fluids, ores and minerals. This project will use the Australian synchrotron facility to study magmas and minerals to improve our understanding of the formation of ore-deposits and the evolution of the continents.
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    Funded Activity

    Linkage Projects - Grant ID: LP110100667

    Funder
    Australian Research Council
    Funding Amount
    $1,620,000.00
    Summary
    Four dimensional lithospheric evolution and controls on mineral system distribution in Neoarchean to Paleoproterozoic terranes. This project will resolve important questions about the links between the evolution and preservation of continents and important mineral deposits in Australia and West Africa between 2.7 and 1.8 billion years ago. The results will improve the understanding of a key period of Earth history and make a major contribution to mineral exploration.
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    Funded Activity

    Discovery Projects - Grant ID: DP120103980

    Funder
    Australian Research Council
    Funding Amount
    $135,000.00
    Summary
    Magnetite and metal-rich sulphides in arc magmas. Ascending magmas cool and crystallise a variety of minerals. Triggering sulfide deposition which hosts base and precious metals is a critical point in magma evolution. This research will explore the role of magnetite as this trigger and its potential as a tracer of this process.
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    Funded Activity

    ARC Future Fellowships - Grant ID: FT130100141

    Funder
    Australian Research Council
    Funding Amount
    $752,960.00
    Summary
    Global Scale Cycling of Noble Gases and Halogens. A novel approach for combined measurement of halogens and noble gases will be used to provide the first constraints on the concentrations of these elements in key reservoirs within subduction zones. The data will revolutionise our understanding of how noble gases and halogens transfer between the Earth's atmosphere and mantle, which has profound implications for our planet's origin and evolution. In addition, the study will provide practical info .... Global Scale Cycling of Noble Gases and Halogens. A novel approach for combined measurement of halogens and noble gases will be used to provide the first constraints on the concentrations of these elements in key reservoirs within subduction zones. The data will revolutionise our understanding of how noble gases and halogens transfer between the Earth's atmosphere and mantle, which has profound implications for our planet's origin and evolution. In addition, the study will provide practical information about how economically important hydrothermal ore deposits form on the seafloor and it will test models for orogenic gold mineralisation.
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    Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE210101126

    Funder
    Australian Research Council
    Funding Amount
    $416,419.00
    Summary
    Stability of accessory minerals during low temperature geological processes. The project aims to improve Australia’s ability to discover mineral deposits beneath sedimentary basins by determining whether detrital accessory minerals in sedimentary basins can be an effective exploration tool. This project expects to generate new knowledge on the stability of detrital accessory minerals in the sedimentary cycle using observations from natural rocks and laboratory experiments. Expected outcomes incl .... Stability of accessory minerals during low temperature geological processes. The project aims to improve Australia’s ability to discover mineral deposits beneath sedimentary basins by determining whether detrital accessory minerals in sedimentary basins can be an effective exploration tool. This project expects to generate new knowledge on the stability of detrital accessory minerals in the sedimentary cycle using observations from natural rocks and laboratory experiments. Expected outcomes include an assessment of the accessory minerals that are best suited to exploration vectoring studies in sedimentary basins. This should provide significant benefits to government and industry by improving mineral exploration methods and also has implications for geochronology and provenance studies.
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    Funded Activity

    Linkage Projects - Grant ID: LP130100722

    Funder
    Australian Research Council
    Funding Amount
    $180,000.00
    Summary
    Earth's best-preserved Archean boninites: do they finally resolve the Archean mantle plume - plate tectonics controversy? Subduction typically starts on the modern Earth with the eruption of chemically distinctive rocks known as boninites. This project will study remarkably well preserved 2.85 billion year old boninites from Western Australia that may finally establish whether modern-style plate tectonics operated in the first half of Earth's history.
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    Active Funded Activity

    ARC Future Fellowships - Grant ID: FT180100533

    Funder
    Australian Research Council
    Funding Amount
    $998,125.00
    Summary
    Evolution of sub-arc mantle oxidation state over Earth’s history. This project aims to determine how the oxidation state of the Earth's mantle has changed throughout geologic history in response to recycling of sulfur, carbon and iron though subduction zones, and how this has influenced mineral deposit formation. The expected outcome is a holistic model that ties evolution of the Earth's biosphere to geochemical changes in the deep Earth that control mineral deposit formation. By improving our u .... Evolution of sub-arc mantle oxidation state over Earth’s history. This project aims to determine how the oxidation state of the Earth's mantle has changed throughout geologic history in response to recycling of sulfur, carbon and iron though subduction zones, and how this has influenced mineral deposit formation. The expected outcome is a holistic model that ties evolution of the Earth's biosphere to geochemical changes in the deep Earth that control mineral deposit formation. By improving our understanding of how, where, when and why mineral deposits formed, this project should provide improvements in mineral exploration strategy, and thus benefits to Australia's economy.
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    Funded Activity

    ARC Future Fellowships - Grant ID: FT110100241

    Funder
    Australian Research Council
    Funding Amount
    $674,328.00
    Summary
    From core to ore: emplacement dynamics of deep-seated nickel sulphide systems. This project will investigate the genesis of ore deposits containing nickel, copper and the immensely valuable platinum group elements. These systems provide insights into fundamental questions regarding the evolution and dynamics of the Earth system, because these ore deposits are windows into the deep mantle of our planet.
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    Funded Activity

    Linkage Projects - Grant ID: LP160100578

    Funder
    Australian Research Council
    Funding Amount
    $225,000.00
    Summary
    Source to spectrum: Finding deposits beyond the Fe oxide-Cu-Au envelope. Source to spectrum: Finding deposits beyond the Fe oxide-Cu-Au envelope. This project aims to improve exploration models for the spectrum of deposits at Olympic Dam. The giant Olympic Dam iron–oxide–copper–gold (IOCG) deposit in the Gawler Craton, discovered 40 years ago, has contributed billions of dollars to the economy. A fluid flow event in the Olympic Dam created a vast, crustal-scale alteration system with a spectrum .... Source to spectrum: Finding deposits beyond the Fe oxide-Cu-Au envelope. Source to spectrum: Finding deposits beyond the Fe oxide-Cu-Au envelope. This project aims to improve exploration models for the spectrum of deposits at Olympic Dam. The giant Olympic Dam iron–oxide–copper–gold (IOCG) deposit in the Gawler Craton, discovered 40 years ago, has contributed billions of dollars to the economy. A fluid flow event in the Olympic Dam created a vast, crustal-scale alteration system with a spectrum of different mineral deposits, many of which are under-explored. This project aims to constrain the source of metal and fluids in the Gawler Craton deposits, determine crustal fertility for deposit formation and develop metal specific 'prospectivity maps' to improve exploration efficiency.
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    Funded Activity

    Discovery Projects - Grant ID: DP170103140

    Funder
    Australian Research Council
    Funding Amount
    $315,000.00
    Summary
    The copper-gold fertility of mountain belts. This project aims to identify the timing of, and understand the causes of, sulphide saturation in granitic suites to test the hypothesis that sulphide saturation controls the fertility of copper-gold deposits. More than half of the world’s copper and gold comes from granitic rocks, but most granitic suites are barren. As copper-gold deposits become increasingly difficult to find, and exploration budgets have been slashed, it is critical to reliably di .... The copper-gold fertility of mountain belts. This project aims to identify the timing of, and understand the causes of, sulphide saturation in granitic suites to test the hypothesis that sulphide saturation controls the fertility of copper-gold deposits. More than half of the world’s copper and gold comes from granitic rocks, but most granitic suites are barren. As copper-gold deposits become increasingly difficult to find, and exploration budgets have been slashed, it is critical to reliably distinguish ore bearing from barren systems. Platinum group element geochemistry could make this distinction by pinpointing the timing of sulphide saturation in evolving magma systems. Eliminating barren suites as exploration targets will save Australia’s exploration dollars which can be directed to where the prospects of success are greatest.
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