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Field of Research : Isotope Geochemistry
Research Topic : Copper
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Isotope Geochemistry (6)
Igneous and Metamorphic Petrology (5)
Geochemistry (3)
Geology (3)
Tectonics (3)
Exploration Geochemistry (2)
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Ore Deposit Petrology (2)
Inorganic Geochemistry (1)
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Copper Ore Exploration (5)
Precious (Noble) Metal Ore Exploration (5)
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Mineral Exploration not elsewhere classified (2)
Diamond Exploration (1)
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Iron Ore Exploration (1)
Other Non-Ferrous Ores (E.G. Copper, Zinc) (1)
Other Non-Metallic Minerals (Incl. Diamonds) (1)
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  • Researchers (43)
  • Funded Activities (6)
  • Organisations (24)
  • Funded Activity

    Linkage Projects - Grant ID: LP120100359

    Funder
    Australian Research Council
    Funding Amount
    $220,000.00
    Summary
    Geochemistry of ore metals at very high temperatures. The world’s largest copper and gold mines occur in extinct volcanoes around the Pacific Rim. Understanding how these essential metals are mobilised from magmas in the roots of volcanoes to become ore deposits and how to recognize where this has occurred is crucial in exploration for new deposits.
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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

    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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    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

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE100100095

    Funder
    Australian Research Council
    Funding Amount
    $700,000.00
    Summary
    Frontiers in integrated laser-sampled trace-element and isotopic geoanalysis. Until around 2005 Australia was a leader in the coupling of laser-ablation microprobes (LAM) with inductively-coupled-plasma mass spectrometers (ICPMS) for geochemical research. However, international developments in femtosecond LAM, sector field instruments and novel instrument coupling possibilities have leap-frogged these achievements. The proposed innovative facility will allow us to regain the leading edge in thi .... Frontiers in integrated laser-sampled trace-element and isotopic geoanalysis. Until around 2005 Australia was a leader in the coupling of laser-ablation microprobes (LAM) with inductively-coupled-plasma mass spectrometers (ICPMS) for geochemical research. However, international developments in femtosecond LAM, sector field instruments and novel instrument coupling possibilities have leap-frogged these achievements. The proposed innovative facility will allow us to regain the leading edge in this field, help maintain the high profile of Australian geoscience internationally, and to attract high-quality researchers and industry-related research funding. The research is relevant to the Deep Earth Resources National Priority and will include projects of direct relevance to mineral exploration and process technology.
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