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Field of Research : Resource geoscience
Research Topic : titanium
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Resource geoscience (6)
Geology (4)
Exploration geochemistry (3)
Igneous and metamorphic petrology (3)
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Titanium Minerals, Zircon, and Rare Earth Metal Ore (E.G. Monazite) Exploration (6)
Expanding Knowledge In the Earth Sciences (5)
Copper Ore Exploration (2)
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First Stage Treatment of Minerals Not Elsewhere Classified (1)
Mining and Extraction of Titanium Minerals, Zircon, and Rare Earth Metal Ores (E.G. Monazite) (1)
Precious (Noble) Metal Ore Exploration (1)
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  • Researchers (10)
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  • Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE240100582

    Funder
    Australian Research Council
    Funding Amount
    $390,000.00
    Summary
    Unlocking Rare Earth Elements from the Earth Crust. This project will explore the mechanisms controlling the mobility of Rare Earth Elements (REE) in natural and engineered hydrothermal systems. The project will generate essential geochemical and thermodynamic data of important REE host minerals, and thereby significantly improve our capacity to quantify the behaviour of REE during complex ore-forming and hydrometallurgical processes. The anticipated outcomes include: facilitate discovery of new .... Unlocking Rare Earth Elements from the Earth Crust. This project will explore the mechanisms controlling the mobility of Rare Earth Elements (REE) in natural and engineered hydrothermal systems. The project will generate essential geochemical and thermodynamic data of important REE host minerals, and thereby significantly improve our capacity to quantify the behaviour of REE during complex ore-forming and hydrometallurgical processes. The anticipated outcomes include: facilitate discovery of new REE deposits by improving understanding of their formation; and facilitate optimisation and development of innovative techniques for REE ore processing. This knowledge and expertise will help Australia to become a world leader in supplying REE for the transition to a carbon-neutral economy.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP240102417

    Funder
    Australian Research Council
    Funding Amount
    $260,041.00
    Summary
    Fluid chemistry and critical mineral enrichment in salty metamorphic belts. Several geological regions in Australia are worth billions of dollars to our economy in their contained copper-goldcobalt and uranium-rare earth element mineral deposits. These regions will continue to be important to Australia as the world transitions to a renewable energy economy because they can provide some of the most critical metals needed for that transition: Cu, Co, rare earth elements. This project aims to provi .... Fluid chemistry and critical mineral enrichment in salty metamorphic belts. Several geological regions in Australia are worth billions of dollars to our economy in their contained copper-goldcobalt and uranium-rare earth element mineral deposits. These regions will continue to be important to Australia as the world transitions to a renewable energy economy because they can provide some of the most critical metals needed for that transition: Cu, Co, rare earth elements. This project aims to provide a fundamental quatitative understanding of the geological processes that form these deposits. We will conduct experiments to generate quantitative models of the metamorphic and structural processes that control the liberation and migration of highly saline fluids, which are ideal for transporting a large range of metals.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP230100173

    Funder
    Australian Research Council
    Funding Amount
    $778,209.00
    Summary
    The Rare Earth Potential of the Gascoyne Region of Western Australia. The Gascoyne Region of Western Australia is an emerging Neodymium-rich rare earth district in its early stages of development. The mineral occurrences of the region are complex and their geological distribution and source(s) remain unclear. With the support of all the active explorers in the region, a better understanding of the entire mineral system is sought to maximise exploration efficiency. This project aims to undertake .... The Rare Earth Potential of the Gascoyne Region of Western Australia. The Gascoyne Region of Western Australia is an emerging Neodymium-rich rare earth district in its early stages of development. The mineral occurrences of the region are complex and their geological distribution and source(s) remain unclear. With the support of all the active explorers in the region, a better understanding of the entire mineral system is sought to maximise exploration efficiency. This project aims to undertake a full assessment of the minerals, their processing and the environmental impact of production to determine the potential of the region. The expected outcome of the project is to develop a world-class rare earth mineral district in Australia, to ensure future supplies of these strategically important metals.
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    Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE240100654

    Funder
    Australian Research Council
    Funding Amount
    $468,367.00
    Summary
    Critical metal fluid migration in shear zones during tectonic switches. This project aims to investigate why critical metal ore deposits form in inverted shear zones, which are zones of deformation that result from tectonic plates moving away from then towards each other. Numerical modelling of inverted shear zones will reveal drivers of ore fluid migration and will be combined with investigation of mineralised and non-mineralised inverted shear zones. This project will generate a new understand .... Critical metal fluid migration in shear zones during tectonic switches. This project aims to investigate why critical metal ore deposits form in inverted shear zones, which are zones of deformation that result from tectonic plates moving away from then towards each other. Numerical modelling of inverted shear zones will reveal drivers of ore fluid migration and will be combined with investigation of mineralised and non-mineralised inverted shear zones. This project will generate a new understanding of how inverted shear zones pump fluids through rocks to cause enrichment and ore deposition. This type of deposit is common in Queensland and the expected outcomes are improved exploration models, leading to discovery of new ore deposits, which is pivotal as the global demand for critical metals increases.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP220100056

    Funder
    Australian Research Council
    Funding Amount
    $301,129.00
    Summary
    Dynamic Earth Models for Frontier Mineral Exploration. This Project aims to investigate the link between supercontinents, mantle upwelling, and associated mineral resources by combining reconstructions of mantle flow with the global rock record. Mantle upwelling causes eruptions of volcanic provinces and associated rock formations that are rich in minerals. The expected outcomes of the Project include mapping the global potential for magmatic nickel, rare-earth elements, and diamond deposits fro .... Dynamic Earth Models for Frontier Mineral Exploration. This Project aims to investigate the link between supercontinents, mantle upwelling, and associated mineral resources by combining reconstructions of mantle flow with the global rock record. Mantle upwelling causes eruptions of volcanic provinces and associated rock formations that are rich in minerals. The expected outcomes of the Project include mapping the global potential for magmatic nickel, rare-earth elements, and diamond deposits from 1.8 billion years ago and building a research alliance between the University of Wollongong, Anglo American, and De Beers. Significant benefits will be the development of a digital framework to reduce risks in exploration for minerals that are essential for the transition to a low-carbon economy.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP240100207

    Funder
    Australian Research Council
    Funding Amount
    $672,881.00
    Summary
    The carbonate geology of the critical metal niobium. This project aims to understand how pyrochlore, the major ore mineral of the critical metal niobium, forms in Earth’s crust. Niobium is exclusively mined from carbonatite magma bodies in Brazil and Canada, despite proven Australian resources. It is used in high strength steel alloys in the construction and transport industries. Expected research outcomes include understanding how pyrochlore forms in carbonatites, development of exploration too .... The carbonate geology of the critical metal niobium. This project aims to understand how pyrochlore, the major ore mineral of the critical metal niobium, forms in Earth’s crust. Niobium is exclusively mined from carbonatite magma bodies in Brazil and Canada, despite proven Australian resources. It is used in high strength steel alloys in the construction and transport industries. Expected research outcomes include understanding how pyrochlore forms in carbonatites, development of exploration tools to locate niobium ore bodies which are unexposed at the surface, and investigation of environmentally and economically sustainable technologies for metallurgical extraction of niobium from ore. The research is intended to benefit Australia’s critical metals exploration and mining industries.
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