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Status : Active
Australian State/Territory : WA
Field of Research : Geochemistry
Australian State/Territory : ACT
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Geochemistry (4)
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  • Active Funded Activity

    Linkage Projects - Grant ID: LP190100785

    Funder
    Australian Research Council
    Funding Amount
    $519,691.00
    Summary
    Experimental constraints on the genesis of gold-rich ore deposits. The project will provide a new set of tools to explore for gold-rich ore deposits in Australia and globally. By integrating geochemical studies with cutting-edge experiments carried out at three Australian universities in strategic partnership with industry, the outcomes of this project will provide much needed knowledge to predict the locations of large gold-rich deposits that are concealed beneath vast expanses of the Australia .... Experimental constraints on the genesis of gold-rich ore deposits. The project will provide a new set of tools to explore for gold-rich ore deposits in Australia and globally. By integrating geochemical studies with cutting-edge experiments carried out at three Australian universities in strategic partnership with industry, the outcomes of this project will provide much needed knowledge to predict the locations of large gold-rich deposits that are concealed beneath vast expanses of the Australian continent. The new results will translate into smarter exploration practice, significantly enhancing success in targeting ore deposits that are rich in high-value metal and display the smallest have a small environmental footprint, to underpin the sustainability of our nation into the future.
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    Active Funded Activity

    Integrated Volatile-mineral-isotope Micro-analysis Of Earth Environments.

    Funder
    Australian Research Council
    Funding Amount
    $344,864.00
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    Active Funded Activity

    Linkage Projects - Grant ID: LP220200912

    Funder
    Australian Research Council
    Funding Amount
    $612,689.00
    Summary
    Hydrogen generation by subsurface iron mineral transformations. Aim The aim of this project is to elucidate key factors responsible for natural hydrogen generation in Australian subsurface environments. Significance Large amounts of this valuable resource are produced naturally with estimates of production rates of this “gold” hydrogen at least 100 times the annual demand for this critical resource. Expected Outcomes Based on improved understanding of the source of natural hydrogen, predictive .... Hydrogen generation by subsurface iron mineral transformations. Aim The aim of this project is to elucidate key factors responsible for natural hydrogen generation in Australian subsurface environments. Significance Large amounts of this valuable resource are produced naturally with estimates of production rates of this “gold” hydrogen at least 100 times the annual demand for this critical resource. Expected Outcomes Based on improved understanding of the source of natural hydrogen, predictive tools will be developed that will assist in assessing the viability in Australia of hydrogen exploration and engineered retrieval. Benefits Ready access to naturally produced hydrogen could enable Australia to replace hydrogen that is currently generated via the use of unabated hydrocarbons.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP190100216

    Funder
    Australian Research Council
    Funding Amount
    $450,000.00
    Summary
    Aqueous fluids in the deep earth. This project aims to improve our understanding of the role of fluids in controlling exchanges between the deep Earth, shallow rocks, and atmosphere. The project expects to investigate some of the key weaknesses in the thermodynamic models that are used to predict the behaviour of sulphur, carbon and metals in fluids at high pressure and temperature by using recent advances in computational and experimental (geo)chemistry. Integrated in large-scale geodynamic mod .... Aqueous fluids in the deep earth. This project aims to improve our understanding of the role of fluids in controlling exchanges between the deep Earth, shallow rocks, and atmosphere. The project expects to investigate some of the key weaknesses in the thermodynamic models that are used to predict the behaviour of sulphur, carbon and metals in fluids at high pressure and temperature by using recent advances in computational and experimental (geo)chemistry. Integrated in large-scale geodynamic models, the more reliable predictions will provide a more realistic assessment of the role of sulphur in controlling metal endowment and atmospheric chemistry through geological times. This should provide a useful guide for mineral exploration and planetary science.
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    Showing 1-4 of 4 Funded Activites

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