ARDC Research Link Australia Research Link Australia   BETA Research
Link
Australia
  • ARDC Newsletter Subscribe
  • Contact Us
  • Home
  • About
  • Feedback
  • Explore Collaborations
  • Researcher
  • Funded Activity
  • Organisation
  • Researcher
  • Funded Activity
  • Organisation
  • Researcher
  • Funded Activity
  • Organisation

Need help searching? View our Search Guide.

Advanced Search

Current Selection
Field of Research : Powder and Particle Technology
Australian State/Territory : QLD
Scheme : Discovery Projects
Clear All
Filter by Field of Research
Powder and Particle Technology (6)
Chemical Engineering (3)
Functional Materials (2)
Aerospace Materials (1)
Biomedical Engineering not elsewhere classified (1)
Catalytic Process Engineering (1)
Chemical Engineering Design (1)
Materials Engineering (1)
Metals and Alloy Materials (1)
Nanomaterials (1)
Nanotechnology (1)
Petroleum and Reservoir Engineering (1)
Pyrometallurgy (1)
Resources Engineering and Extractive Metallurgy (1)
Filter by Socio-Economic Objective
Basic Copper Products (1)
Basic Iron and Steel Products (1)
Expanding Knowledge in Engineering (1)
Expanding Knowledge in Technology (1)
Expanding Knowledge in the Biological Sciences (1)
Expanding Knowledge in the Chemical Sciences (1)
Fuel Cells (excl. Solid Oxide) (1)
Human Pharmaceutical Products not elsewhere classified (1)
Inorganic Industrial Chemicals (1)
Machined Metal Products (1)
Oil and Gas Extraction (1)
Structural Metal Products (1)
Filter by Funding Provider
Australian Research Council (6)
Filter by Status
Closed (6)
Filter by Scheme
Discovery Projects (6)
Filter by Country
Australia (6)
Filter by Australian State/Territory
QLD (6)
NSW (1)
  • Researchers (14)
  • Funded Activities (6)
  • Organisations (2)
  • Funded Activity

    Discovery Projects - Grant ID: DP110100394

    Funder
    Australian Research Council
    Funding Amount
    $315,000.00
    Summary
    Engineered nanoporous materials and composites having hierarchical structures by emulsion templating. The project aims to develop new and flexible emulsion-templated processes capable of constructing novel nanoporous materials with hierarchical structures. The project has the potential to revolutionise current approaches for making porous materials, and the outcomes will enhance Australia's ability in frontier technologies and advanced materials.
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP140102237

    Funder
    Australian Research Council
    Funding Amount
    $450,000.00
    Summary
    A New Platform of Bio-inspired Nanoparticles for Enhanced Cellular Delivery. Delivery of various molecules into cells is crucial in modern medicine. Compared to viral vectors, non-viral vectors are safer delivery vehicles, but their delivery efficiency must be improved before they can be broadly used. Inspired by the surface topography of viruses with high infectivity, this project aims to provide a fundamental understanding of the impact of surface roughness on cellular delivery efficiency; and .... A New Platform of Bio-inspired Nanoparticles for Enhanced Cellular Delivery. Delivery of various molecules into cells is crucial in modern medicine. Compared to viral vectors, non-viral vectors are safer delivery vehicles, but their delivery efficiency must be improved before they can be broadly used. Inspired by the surface topography of viruses with high infectivity, this project aims to provide a fundamental understanding of the impact of surface roughness on cellular delivery efficiency; and to use this knowledge in the designed synthesis of a new family of bio-inspired non-viral nanoparticles with both safety and high cellular delivery efficiency. The new and high performance nano-carriers will become a platform technology with broad bio-applications in gene therapy, cancer therapy and bio-imaging.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP110105256

    Funder
    Australian Research Council
    Funding Amount
    $266,700.00
    Summary
    Net shape manufacturing of titanium alloys by powder metallurgy. This project is aiming at developing a novel net shape manufacturing for advanced materials (titanium alloys) and addresses Priority Goal of Advanced Materials of Research Priority 3: Frontier Technologies for Advanced Materials. It represents new science and innovative engineering and has the potential to produce valuable new intellectual property.
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP150103467

    Funder
    Australian Research Council
    Funding Amount
    $310,700.00
    Summary
    Mudstones as methane sources: gas production from coal seam interburden. Carbonaceous mudstones associated with coal measures already exploited for gas present an attractive reservoir of methane. This project seeks to provide methods for accessing this gas. Mudstone associated with coal seam gas developments are very extensive and gas quantities may exceed even that in the coal itself. Further infrastructure and access permits are already in place for coal seam gas recovery. Unlike shale, which .... Mudstones as methane sources: gas production from coal seam interburden. Carbonaceous mudstones associated with coal measures already exploited for gas present an attractive reservoir of methane. This project seeks to provide methods for accessing this gas. Mudstone associated with coal seam gas developments are very extensive and gas quantities may exceed even that in the coal itself. Further infrastructure and access permits are already in place for coal seam gas recovery. Unlike shale, which is fissile, mudstone is much softer, more malleable and plastic, and consequently will respond abnormally to hydraulic fracturing and propping, so new methods proposed to be developed in this project are needed for stimulation.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP170103317

    Funder
    Australian Research Council
    Funding Amount
    $337,000.00
    Summary
    A defect mechanism for oxygen reduction reaction. This project aims to use defective carbon to replace expensive platinum as a catalyst for oxygen reduction reaction (ORR) in fuel cells. Defective carbons incorporating non-precious metals are better than platinum in terms of over-potential, current density and number of electron transfer. They reduce the overall fuel cell cost but their better stability and higher open voltage and power density promise huge commercial benefit. This project is ex .... A defect mechanism for oxygen reduction reaction. This project aims to use defective carbon to replace expensive platinum as a catalyst for oxygen reduction reaction (ORR) in fuel cells. Defective carbons incorporating non-precious metals are better than platinum in terms of over-potential, current density and number of electron transfer. They reduce the overall fuel cell cost but their better stability and higher open voltage and power density promise huge commercial benefit. This project is expected to be important for large-scale implementation of fuel cells.
    Read more Read less
    More information
    Funded Activity

    Discovery Projects - Grant ID: DP180101232

    Funder
    Australian Research Council
    Funding Amount
    $342,498.00
    Summary
    Modelling of particle-fluid reactive flows coupled with phase changes. This project aims to develop an integrated mathematical model for reliably describing multiphase reactive flow coupled with phase change. Particle-fluid reactive flows with phase changes are widely encountered in many energy-intensive industries, yet process design and optimization are hindered by the lack of understanding of complex phenomena governing particularly multiphase flow, phase change and their interactions. The m .... Modelling of particle-fluid reactive flows coupled with phase changes. This project aims to develop an integrated mathematical model for reliably describing multiphase reactive flow coupled with phase change. Particle-fluid reactive flows with phase changes are widely encountered in many energy-intensive industries, yet process design and optimization are hindered by the lack of understanding of complex phenomena governing particularly multiphase flow, phase change and their interactions. The model will be achieved by means of combining advanced particle-scale numerical techniques with pre-database-based thermodynamic model, supported by physical experiments. The outcomes will be applied across a range of industries of vital importance to Australian economic and technological future. It will help transform Australian pyrometallurgy and chemical industries, open new markets for a range of Australian minerals like low-grade coal and iron/copper ore, and ultimately enhance competitiveness of Australian economy.
    Read more Read less
    More information

    Showing 1-6 of 6 Funded Activites

    Advanced Search

    Advanced search on the Researcher index.

    Advanced search on the Funded Activity index.

    Advanced search on the Organisation index.

    National Collaborative Research Infrastructure Strategy

    The Australian Research Data Commons is enabled by NCRIS.

    ARDC CONNECT NEWSLETTER

    Subscribe to the ARDC Connect Newsletter to keep up-to-date with the latest digital research news, events, resources, career opportunities and more.

    Subscribe

    Quick Links

    • Home
    • About Research Link Australia
    • Product Roadmap
    • Documentation
    • Disclaimer
    • Contact ARDC

    We acknowledge and celebrate the First Australians on whose traditional lands we live and work, and we pay our respects to Elders past, present and emerging.

    Copyright © ARDC. ACN 633 798 857 Terms and Conditions Privacy Policy Accessibility Statement
    Top
    Quick Feedback