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Research Topic : Ecosystem function
Australian State/Territory : VIC
Socio-Economic Objective : Native Forests
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Ecological Applications (3)
Ecological Impacts of Climate Change (3)
Ecosystem Function (2)
Forestry Management and Environment (2)
Biological Adaptation (1)
Carbon Sequestration Science (1)
Ecological Physiology (1)
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Native Forests (5)
Ecosystem Adaptation to Climate Change (3)
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Ecosystem Assessment and Management of Forest and Woodlands Environments (1)
Effects of Climate Change and Variability on Australia (excl. Social Impacts) (1)
Flora, Fauna and Biodiversity at Regional or Larger Scales (1)
Management of Greenhouse Gas Emissions from Plant Production (1)
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  • Funded Activity

    Discovery Projects - Grant ID: DP120101735

    Funder
    Australian Research Council
    Funding Amount
    $270,000.00
    Summary
    Methane uptake of forest soils. This project will provide a detailed understanding of capacity of soils in Australia to sequester the greenhouse gas methane. It will identify the main factors and processes controlling methane uptake in soils and improve predictive models will allow us to predict methane uptake in the future.
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    Funded Activity

    Discovery Projects - Grant ID: DP170102766

    Funder
    Australian Research Council
    Funding Amount
    $405,500.00
    Summary
    Temperature sensitivity of soil respiration and its components. This project aims to demonstrate how temperate evergreen forests could buffer against climate change. Soil respiration returns around half the carbon taken up by forests to the atmosphere. This project will characterise and quantify how microbes and roots in soils depend on temperature and substrate supply, and so predict how rising temperatures and drought will affect forests as natural carbon sequestration sinks. This project will .... Temperature sensitivity of soil respiration and its components. This project aims to demonstrate how temperate evergreen forests could buffer against climate change. Soil respiration returns around half the carbon taken up by forests to the atmosphere. This project will characterise and quantify how microbes and roots in soils depend on temperature and substrate supply, and so predict how rising temperatures and drought will affect forests as natural carbon sequestration sinks. This project will resolve the roles of environmental drivers of soil respiration across forests; integrate mechanistic understanding of differing plant and microbial responses to temperature within a common modelling framework; and evaluate the implications of this knowledge in predictions of climatic impacts on terrestrial carbon cycling.
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    Funded Activity

    ARC Future Fellowships - Grant ID: FT120100715

    Funder
    Australian Research Council
    Funding Amount
    $683,974.00
    Summary
    Climate-proofing southeastern Australia's native forests: where, when, and how? Changing environmental conditions and forest fragmentation threaten the ability of native forest species to regenerate or migrate. Using unique long–term datasets and novel statistical analyses, this project will assess future risks to forest regeneration after logging, bushfires, and land abandonment.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP200100555

    Funder
    Australian Research Council
    Funding Amount
    $483,977.00
    Summary
    Escalating the arms race: Understanding when and how trees get really tall. Australia's giant Eucalypt trees are an amazing phenomenon and resource; underpinning unique ecosystems, rich in timber, stored carbon, and animal habitat. While tree height generally arises via an evolutionary arms race for light, the race has escalated dramatically in some locations and species. Using a computational framework that simulates adaptation driven by size-structured competition, this project will quantify h .... Escalating the arms race: Understanding when and how trees get really tall. Australia's giant Eucalypt trees are an amazing phenomenon and resource; underpinning unique ecosystems, rich in timber, stored carbon, and animal habitat. While tree height generally arises via an evolutionary arms race for light, the race has escalated dramatically in some locations and species. Using a computational framework that simulates adaptation driven by size-structured competition, this project will quantify how distinct factors-including climate, recruitment, and disturbance-enhance the race for light and can thereby explain the origins of Australia's giant Eucalypt. With calibrated models of species evolution, coupled with targeted fieldwork and big data, this project clarifies key forces shaping present and future vegetation.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP220103711

    Funder
    Australian Research Council
    Funding Amount
    $642,000.00
    Summary
    Is climate change altering the carrying capacity of the world’s forests? Planting trees at a global scale has been proposed as a key strategy to reduce global atmospheric CO2 levels. However, changing climatic conditions threaten the ability of forests to be net CO2 absorbers. In a warmer and drier future, forests may not be able to support as many trees. This project aims to identify how climate will alter forest carrying capacity across millions of hectares of the world’s forests. By combining .... Is climate change altering the carrying capacity of the world’s forests? Planting trees at a global scale has been proposed as a key strategy to reduce global atmospheric CO2 levels. However, changing climatic conditions threaten the ability of forests to be net CO2 absorbers. In a warmer and drier future, forests may not be able to support as many trees. This project aims to identify how climate will alter forest carrying capacity across millions of hectares of the world’s forests. By combining recent advances in forest modelling with large-scale and long-term forest inventory data, the project will develop a novel framework to forecast forest dynamics under climate change. It will provide specific guidelines to inform global reforestation strategies and foster climate-smart forest management.
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