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Research Topic : Waste
Australian State/Territory : VIC
Socio-Economic Objective : Expanding Knowledge In Engineering
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  • Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE230101472

    Funder
    Australian Research Council
    Funding Amount
    $454,054.00
    Summary
    Converting textiles waste to novel nanostructured porous carbon fibre . This project aims to develop innovative catalytic activation approaches for converting textiles waste to porous activated carbon fibre with potential application in energy storage and carbon capture. The project expects to address the key issue of textile upcycling and generate new knowledge in material science by revealing the principle of alkali metal-induced pore formation and carbon dot synthesis. Expected outcomes inclu .... Converting textiles waste to novel nanostructured porous carbon fibre . This project aims to develop innovative catalytic activation approaches for converting textiles waste to porous activated carbon fibre with potential application in energy storage and carbon capture. The project expects to address the key issue of textile upcycling and generate new knowledge in material science by revealing the principle of alkali metal-induced pore formation and carbon dot synthesis. Expected outcomes include advanced techniques to create value-added materials from recycling textiles waste and in-depth understanding of performance improvement mechanisms. Success will provide significant benefits in securing a sustainable future for Australia, ensuring valuable resources recovery and strategies for advanced manufacturing.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP230100235

    Funder
    Australian Research Council
    Funding Amount
    $278,978.00
    Summary
    Achieving Nitrite Shunt For Mainstream Sewage Treatment Using Human Waste. This project aims to develop a novel technology to achieve mainstream nitrogen removal from domestic sewage via nitrite shunt. Nitrite shunt can reduce energy consumption and promote energy recovery compared with the conventional nitrogen removal process. However, it is difficult to inactivate nitrite-oxidising bacteria, which is a key barrier for achieving nitrite shunt. By advancing the underpinning science and introduc .... Achieving Nitrite Shunt For Mainstream Sewage Treatment Using Human Waste. This project aims to develop a novel technology to achieve mainstream nitrogen removal from domestic sewage via nitrite shunt. Nitrite shunt can reduce energy consumption and promote energy recovery compared with the conventional nitrogen removal process. However, it is difficult to inactivate nitrite-oxidising bacteria, which is a key barrier for achieving nitrite shunt. By advancing the underpinning science and introducing a novel technology that innovatively harnesses a human waste, the project expects to remove the barrier. Expected outcomes will support the transformation of sewage treatment plants into net-zero energy generators. This should provide economic, environmental and energy benefits for Australia’s water and energy sectors.
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    Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE230100338

    Funder
    Australian Research Council
    Funding Amount
    $448,721.00
    Summary
    Enabling solid state metal recycling with new numerical techniques. This project performs modelling to help develop an additive metal manufacturing process that makes use of scrap as input feed. It will develop new understanding of the key physical aspects of friction stir additive manufacturing and build a new efficient yet accurate continuum thermo-mechanical model for its simulation. This technology will enable metal deposition at rates an order of magnitude greater than conventional powder a .... Enabling solid state metal recycling with new numerical techniques. This project performs modelling to help develop an additive metal manufacturing process that makes use of scrap as input feed. It will develop new understanding of the key physical aspects of friction stir additive manufacturing and build a new efficient yet accurate continuum thermo-mechanical model for its simulation. This technology will enable metal deposition at rates an order of magnitude greater than conventional powder additive manufacturing methods. The new computational approach will be used to create processing and design maps. The work will facilitate greater use of high metal scrap and pave the way for more robust supply chains and new business models with application in automotive, mining, aerospace and military sectors.
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    Showing 1-3 of 3 Funded Activites

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