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Field of Research : Civil Geotechnical Engineering
Research Topic : Soils
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Civil Geotechnical Engineering (6)
Civil Engineering (4)
Carbon Sequestration Science (1)
Environmental Rehabilitation (excl. Bioremediation) (1)
Geomechanics and Resources Geotechnical Engineering (1)
Resources Engineering and Extractive Metallurgy (1)
Soil Chemistry (excl. Carbon Sequestration Science) (1)
Soil Physics (1)
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Urban and Industrial Soils (3)
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Farmland, Arable Cropland and Permanent Cropland Soils (1)
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Physical and Chemical Conditions of Water for Urban and Industrial Use (1)
Rehabilitation of Degraded Fresh, Ground and Surface Water Environments (1)
Rehabilitation of Degraded Urban and Industrial Environments (1)
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  • Researchers (9)
  • Funded Activities (6)
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  • Active Funded Activity

    Discovery Early Career Researcher Award - Grant ID: DE200101116

    Funder
    Australian Research Council
    Funding Amount
    $378,616.00
    Summary
    Bringing granular mechanics to prevent fluid-driven soil erosion problems. This project aims to investigate the erosive behaviour of soils by exploring the interaction between evolving topography and overland water flow. It expects to generate new knowledge about the dominant granular mechanisms under different flow conditions using innovative high-speed X-ray imaging and detailed numerical simulations. Anticipated outcomes include a simple mathematical framework that takes these important facto .... Bringing granular mechanics to prevent fluid-driven soil erosion problems. This project aims to investigate the erosive behaviour of soils by exploring the interaction between evolving topography and overland water flow. It expects to generate new knowledge about the dominant granular mechanisms under different flow conditions using innovative high-speed X-ray imaging and detailed numerical simulations. Anticipated outcomes include a simple mathematical framework that takes these important factors into account, which will bridge geomechanics and fluid mechanics to provide valuable insight into long-term erosion and deposition rates. This should provide significant benefit by enhancing our ability to predict, and therefore prevent, intense soil loss or problematic build-up of sediment.
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    Funded Activity

    Discovery Projects - Grant ID: DP170104192

    Funder
    Australian Research Council
    Funding Amount
    $411,000.00
    Summary
    The mechanics of healing and self-healing in clayey soils. This project aims to develop an experimentally-validated theory of healing and self-healing in clay and determine clay-polymer mixtures that heal cracks and fissures in clay. Healing of fissures will improve strength and reduce hydraulic conductivity, which will reduce risks associated with construction on fissured clay and make clay barrier systems in dehydrating environments more reliable. The project’s observations of crack healing ar .... The mechanics of healing and self-healing in clayey soils. This project aims to develop an experimentally-validated theory of healing and self-healing in clay and determine clay-polymer mixtures that heal cracks and fissures in clay. Healing of fissures will improve strength and reduce hydraulic conductivity, which will reduce risks associated with construction on fissured clay and make clay barrier systems in dehydrating environments more reliable. The project’s observations of crack healing are expected to advance understanding of this phenomenon of soil mechanics and of geotechnical applications where cracking can occur, such as in foundation design, waste containment, slope stability and embankment dams.
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    Funded Activity

    Discovery Indigenous - Grant ID: IN150100037

    Funder
    Australian Research Council
    Funding Amount
    $570,000.00
    Summary
    The effect of climate change on the biogeochemistry of estuarine soft soils. The Australian coastline is dotted with soft clays to a significant depth. These soft clay deposits display excessive settlement characteristics, affecting transport infrastructure. Understanding the couplings between the biogeochemical composition of the pore liquid and the mechanical behaviour of soft soils is essential, but current engineering practice is limited. Sea level rise in Australia will potentially place as .... The effect of climate change on the biogeochemistry of estuarine soft soils. The Australian coastline is dotted with soft clays to a significant depth. These soft clay deposits display excessive settlement characteristics, affecting transport infrastructure. Understanding the couplings between the biogeochemical composition of the pore liquid and the mechanical behaviour of soft soils is essential, but current engineering practice is limited. Sea level rise in Australia will potentially place as much as $67 billion in transport infrastructure at risk; consequently, this project aims to examine the impact of climate change on the biogeochemical processes of estuarine sediments in relation to: geotechnical properties; soft soil stability under sea level change; and soil carbon sequestration.
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    Funded Activity

    Discovery Projects - Grant ID: DP130100203

    Funder
    Australian Research Council
    Funding Amount
    $285,000.00
    Summary
    An experimentally-validated thermo-hydro-mechanical theory for waste containment lining systems. Geosynthetic clay liners are engineering systems that are widely used around the world to protect groundwater from municipal, industrial and mining contaminants. The project will conduct cutting-edge experimental, theoretical and computational research leading to a major improvement in their short-term and long-term performances.
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    Funded Activity

    Linkage Projects - Grant ID: LP100200584

    Funder
    Australian Research Council
    Funding Amount
    $250,000.00
    Summary
    Anticipating closure of bauxite refineries in Western Australia: the water quality implications of a proposed new design in residue storage areas. Refining bauxite is a major industrial activity in Australia, with economic benefits and a high potential for environmental impact. Many bauxite refineries are sited in rural areas. Community interests are given high priority in developing strategies for long-term storage of residue. These community interests include minimal impact on farmland, water, .... Anticipating closure of bauxite refineries in Western Australia: the water quality implications of a proposed new design in residue storage areas. Refining bauxite is a major industrial activity in Australia, with economic benefits and a high potential for environmental impact. Many bauxite refineries are sited in rural areas. Community interests are given high priority in developing strategies for long-term storage of residue. These community interests include minimal impact on farmland, water, health and natural ecosystems. Some of the refinery residue can be re-used in applications such as road construction, thus reducing the need to find other materials for this purpose. This project will investigate new residue management practices which could lead to better ways of establishing a sustainable vegetation cover and avoiding the impact of drainage water on the environment.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP220100218

    Funder
    Australian Research Council
    Funding Amount
    $554,500.00
    Summary
    Microplastics in Landfills and Surrounding Environments. This project aims to build a risk-based framework for managing micro- and nano-plastic particles in landfills and surrounding environments. It expects to develop a new experimentally validated theory of micro/nano-plastic transport in soils, focussing on lining systems used in landfills worldwide to protect aquifers from contamination. The project will use state-of-the-art experimental, theoretical and computational approaches to generate .... Microplastics in Landfills and Surrounding Environments. This project aims to build a risk-based framework for managing micro- and nano-plastic particles in landfills and surrounding environments. It expects to develop a new experimentally validated theory of micro/nano-plastic transport in soils, focussing on lining systems used in landfills worldwide to protect aquifers from contamination. The project will use state-of-the-art experimental, theoretical and computational approaches to generate new knowledge on micro/nano-plastic fate in lining systems and their effects on the mobility of heavy metals and organic pollutants. This should provide significant benefits including safe plastic containment and groundwater protection from landfill waste, a major reservoir of plastic in the environment.
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