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Research Topic : cochlear response
Australian State/Territory : QLD
Field of Research : Infectious Agents
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  • Funded Activity

    Discovery Projects - Grant ID: DP170102733

    Funder
    Australian Research Council
    Funding Amount
    $303,000.00
    Summary
    Modulation of air-conditioning settings to destroy respiratory viruses. This project aims to prove that manipulating the ambient humidity can rapidly degrade airborne viruses. The relationship between ambient humidity and airborne infection is poorly understood for viral pathogens including influenza and the common cold. The project will prove that indoor environmental conditions can be easily manipulated to kill airborne viruses. The findings will be used to develop indoor air humidity control .... Modulation of air-conditioning settings to destroy respiratory viruses. This project aims to prove that manipulating the ambient humidity can rapidly degrade airborne viruses. The relationship between ambient humidity and airborne infection is poorly understood for viral pathogens including influenza and the common cold. The project will prove that indoor environmental conditions can be easily manipulated to kill airborne viruses. The findings will be used to develop indoor air humidity control guidelines targeting the vulnerabilities of the viruses to minimise airborne infection.
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    Funded Activity

    Linkage Projects - Grant ID: LP130100035

    Funder
    Australian Research Council
    Funding Amount
    $274,536.00
    Summary
    Innovative approaches to understanding and limiting the public health risks of Cryptosporidium and Giardia in animals in Australian catchments. Sophisticated molecular typing and modelling will be used to determine if chlorine-resistant parasites in animals in catchments are responsible for infection in humans. Improved catchment management and risk mitigation strategies will be developed during this project, which will make a substantial contribution to the provision of safe drinking water acro .... Innovative approaches to understanding and limiting the public health risks of Cryptosporidium and Giardia in animals in Australian catchments. Sophisticated molecular typing and modelling will be used to determine if chlorine-resistant parasites in animals in catchments are responsible for infection in humans. Improved catchment management and risk mitigation strategies will be developed during this project, which will make a substantial contribution to the provision of safe drinking water across Australia.
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    Funded Activity

    Discovery Projects - Grant ID: DP120102793

    Funder
    Australian Research Council
    Funding Amount
    $320,000.00
    Summary
    Development of strategy for comprehensive protection of Australia against respiratory diseases by real time detection of airborne pathogenic microbes. The project will develop a real time portable bioaerosol detector capable of identifying a presence of targeted microorganisms in the ambient air immediately upon their appearance. The device will become a powerful tool capable of protecting Australia by minimising the possible spread of infectious respiratory diseases causing global pandemics.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP210103284

    Funder
    Australian Research Council
    Funding Amount
    $351,000.00
    Summary
    Aerosol glassy states promote global warming, airborne toxins and pathogens. This project will improve our understanding of the role played by airborne particles in global climate, pollution and the transmission of influenza, corona virus and the common cold. It will do so by revealing the wider importance of "glassy states" of matter recently revealed in atmospheric aerosols. Glassy states are highly unpredictable quasi solids that abruptly form, interrupting the transition of a liquid to a sol .... Aerosol glassy states promote global warming, airborne toxins and pathogens. This project will improve our understanding of the role played by airborne particles in global climate, pollution and the transmission of influenza, corona virus and the common cold. It will do so by revealing the wider importance of "glassy states" of matter recently revealed in atmospheric aerosols. Glassy states are highly unpredictable quasi solids that abruptly form, interrupting the transition of a liquid to a solid. This interruption invalidates equilibrium assumptions of models of droplets as cloud nuclei and infection vectors. We will develop and validate a numerical tool for predicting glassy state formation and its impact in broad classes of aerosol that include particles critical to cloud formation and infection transmission.
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    Showing 1-4 of 4 Funded Activites

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