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Research Topic : Exploration
Field of Research : Inorganic Geochemistry
Australian State/Territory : NSW
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Inorganic Geochemistry (5)
Geochemistry (3)
Geodynamics (2)
Geology (2)
Isotope Geochemistry (2)
Tectonics (2)
Electrical and Electromagnetic Methods in Geophysics (1)
Exploration Geochemistry (1)
Igneous and Metamorphic Petrology (1)
Ore Deposit Petrology (1)
Organic Chemical Synthesis (1)
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Expanding Knowledge in the Earth Sciences (3)
Mineral Exploration not elsewhere classified (3)
Copper Ore Exploration (2)
Precious (Noble) Metal Ore Exploration (2)
Information Services not elsewhere classified (1)
Titanium Minerals, Zircon, and Rare Earth Metal Ore (e.g. Monazite) Exploration (1)
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Australian Research Council (5)
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  • Researchers (21)
  • Funded Activities (5)
  • Organisations (5)
  • 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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    Active Funded Activity

    Discovery Projects - Grant ID: DP220100709

    Funder
    Australian Research Council
    Funding Amount
    $490,000.00
    Summary
    Mapping mineral systems of deep Australia. We aim at enabling mineral resource discoveries by calibrating geophysical surveys using geochemical and petrophysical properties measured on mantle samples brought to the surface by recent volcanoes. National geophysical surveys deliver images of geophysical gradients in the deeper part of the Australian continent. The interpretation of these gradients in geological terms and in terms of economic mineral systems is the key to unlock deep exploration su .... Mapping mineral systems of deep Australia. We aim at enabling mineral resource discoveries by calibrating geophysical surveys using geochemical and petrophysical properties measured on mantle samples brought to the surface by recent volcanoes. National geophysical surveys deliver images of geophysical gradients in the deeper part of the Australian continent. The interpretation of these gradients in geological terms and in terms of economic mineral systems is the key to unlock deep exploration success. This project will turn Australia’s investment in National geophysical surveys into new discoveries of base metals. The benefit stems from enabling the transition to a clean economy which requires a much broader range of critical minerals and a larger quantity of base metals.
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    Funded Activity

    ARC Centres Of Excellence - Grant ID: CE1101017

    Funder
    Australian Research Council
    Funding Amount
    $12,400,000.00
    Summary
    ARC Centre of Excellence for Core to Crust Fluid Systems. Water is essential for human existence, indeed for life's beginning. The circulation of water between the surface and the deep interior lubricates the internal dynamics that keep Earth geologically alive; it is crucial to most Earth systems, including the evolution of the hydrospher/atmosphere/biosphere, and the development of giant ore deposits. However, the origin, abundance, speciation and movements of fluids inside Earth are largely u .... ARC Centre of Excellence for Core to Crust Fluid Systems. Water is essential for human existence, indeed for life's beginning. The circulation of water between the surface and the deep interior lubricates the internal dynamics that keep Earth geologically alive; it is crucial to most Earth systems, including the evolution of the hydrospher/atmosphere/biosphere, and the development of giant ore deposits. However, the origin, abundance, speciation and movements of fluids inside Earth are largely unknown, and represent key issues in modern geoscience. This CoE will integrate previously disparate fields - geology, tectonics, geochemistry, petrophysics, geophysics and dynamic modelling - to understand the workings of Earth's deep plumbing system.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP220100136

    Funder
    Australian Research Council
    Funding Amount
    $413,000.00
    Summary
    Experimental and empirical insight into melting of the early Earth's mantle. The early Earth's mantle produced melt at much higher temperature than today, creating rocks with unique chemistries and mineralogies. But pressing knowledge gaps about hot mantle melting remain. The aim of this project is to generate new experimental and empirical knowledge to help closing these gaps by: (i) conducting high pressure experiments to refine phase-composition relationships and element partitioning; (ii) qu .... Experimental and empirical insight into melting of the early Earth's mantle. The early Earth's mantle produced melt at much higher temperature than today, creating rocks with unique chemistries and mineralogies. But pressing knowledge gaps about hot mantle melting remain. The aim of this project is to generate new experimental and empirical knowledge to help closing these gaps by: (i) conducting high pressure experiments to refine phase-composition relationships and element partitioning; (ii) quantifying mineral fabrics in cratonic peridotites to understand the movement of early continents; and (iii) constructing the first petrological deep time model for greenstone belt volcanic rocks. The expected outcomes are better models for the early Earth's melting and tectonic regimes and insight into the emergence of land.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP180103204

    Funder
    Australian Research Council
    Funding Amount
    $591,274.00
    Summary
    A terrestrial hot spring setting for the origin of life. This project aims to test the proposal that a terrestrial hot spring field could have been the setting for the origin of life, in preference over the currently favoured site at deep sea vents. The project will involve an integrated, and multi-disciplinary study of the rocks, fluids, and molecules that together make up ancient to modern hot spring systems, and experiments on prebiotic organic chemistry using early Earth materials. Results w .... A terrestrial hot spring setting for the origin of life. This project aims to test the proposal that a terrestrial hot spring field could have been the setting for the origin of life, in preference over the currently favoured site at deep sea vents. The project will involve an integrated, and multi-disciplinary study of the rocks, fluids, and molecules that together make up ancient to modern hot spring systems, and experiments on prebiotic organic chemistry using early Earth materials. Results will be used to develop a terrestrial origin of life setting and assist in the search for life on Mars.
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