Deliberative democracy and climate change: building the foundations of an adaptive system. This project will find mechanisms for improving public debate regarding climate change and the ability to respond to the challenge, as well as the politics surrounding it. It will make recommendations about the approaches needed to transform the issue and at the same time achieve better democratic outcomes.
Towards a climate theory of tropical cyclone formation. In Earth's current climate, about 80 to 90 tropical cyclones form every year around the globe, but the reasons why cyclones form at this rate are unknown. This project will use a combination of theoretical techniques and numerical simulation to elucidate the links between large-scale climate and the rate of tropical cyclone formation. A series of climate model experiments will be performed that also have the potential to improve confidence ....Towards a climate theory of tropical cyclone formation. In Earth's current climate, about 80 to 90 tropical cyclones form every year around the globe, but the reasons why cyclones form at this rate are unknown. This project will use a combination of theoretical techniques and numerical simulation to elucidate the links between large-scale climate and the rate of tropical cyclone formation. A series of climate model experiments will be performed that also have the potential to improve confidence in our predictions of tropical cyclone incidence in a future, changed climate.Read moreRead less
Are proposed land-based sinks for greenhouse gases resilient to climate change and natural variability? One strategy to reduce the scale of future climate change is to enhance the storage of carbon in vegetation and soils. Evidence suggests carbon stored in vegetation and soils is itself vulnerable to climate change, placing this stored carbon at risk; this project will assess this risk to advise on the reliability of using terrestrial systems as carbon sinks.
Know & Show Your Carbon Footprint - Discovery Phase
Funder
Fisheries Research and Development Corporation
Funding Amount
$35,000.00
Summary
This project will be an initial discovery phase to inform scoping of overall approach.
Deliverables include: Consultation across fishing and aquaculture stakeholders at least 38 key fishing and aquaculture stakeholders. • Identification of the functional and non-functional requirements to create K&S functionality for the included sectors. • Identification of the data and modelling requirements to create K&S module/functionality for the included sectors. • Assessment ....This project will be an initial discovery phase to inform scoping of overall approach.
Deliverables include: Consultation across fishing and aquaculture stakeholders at least 38 key fishing and aquaculture stakeholders. • Identification of the functional and non-functional requirements to create K&S functionality for the included sectors. • Identification of the data and modelling requirements to create K&S module/functionality for the included sectors. • Assessment of any current solutions/calculators provided relative to the market requirement. • Evaluate current reference and benchmarking data versus what is required to support accurate, automated carbon accounting, and, ultimately inform decision-making that enables productivity whilst reducing carbon emissions. • Understand the gap between knowing your carbon footprint and being able to make informed decisions that lead to reductions in emissions. • Identification of the data and modelling requirements to create a module and/or functionality for the included sectors. • Identification of the missing calculators, features, functionality and underlying data and research required to enable all sectors to participate and benefit from the platform. • Documented solution design for creation of functionality identified during discovery for addition to the core infrastructure. • Report detailing the results of the carbon footprint calculation drivers / needs / existing knowledge, tools & data, gap analysis, and solution design. This will inform the Contributor and AIA in respect of further investment in the K&S solution.
Objectives: 1. Complete discovery phase to inform scoping of 'Know & Show', for consideration Read moreRead less
Understanding leaf water isotope composition. This project aims to quantify variation in leaf water isotopes and develop mechanistic models for paleoclimatologists and plant scientists to constrain global carbon cycles. Leaf water stable isotopes influence the isotope compositions of atmospheric oxygen, carbon dioxide and water vapour, and impart an evaporative signal on the isotope composition of plant organic material. These isotope signals have been used to constrain global carbon and water c ....Understanding leaf water isotope composition. This project aims to quantify variation in leaf water isotopes and develop mechanistic models for paleoclimatologists and plant scientists to constrain global carbon cycles. Leaf water stable isotopes influence the isotope compositions of atmospheric oxygen, carbon dioxide and water vapour, and impart an evaporative signal on the isotope composition of plant organic material. These isotope signals have been used to constrain global carbon and water cycles and reconstruct past climates. This project aims to quantify variation in leaf water isotopes and develop mechanistic models for use by paleoclimatologists, plant scientists and to constrain global carbon cycles and develop accurate models of leaf water isotopes to reduce uncertainty in climate models.Read moreRead less
Coupling tropical cyclone and climate physics with ocean waves. It is argued that without accounting for the wave effects directly, the physics of large-scale air-sea interactions is inaccurate and incomplete. The project will introduce explicit coupling of large-scale atmospheric and oceanic phenomena with the physics of surface waves which should lead to improved predictions of tropical cyclones and climate.
FRDC-DCCEE: Changing Currents In Marine Biodiversity Governance And Management: Responding To Climate Change
Funder
Fisheries Research and Development Corporation
Funding Amount
$314,966.34
Summary
This project addresses the significant need identified in the NARP to review agility of conservation governance and management. The likely effects of human-induced climate change on marine biodiversity raise questions about adaptive capacity of current governance and management systems and their ability to support the resilience of marine biota. Governance directly influences whether resilience is undermined, preserved or strengthened (McCook et al. 2007). As noted in a 2009 House of Representat ....This project addresses the significant need identified in the NARP to review agility of conservation governance and management. The likely effects of human-induced climate change on marine biodiversity raise questions about adaptive capacity of current governance and management systems and their ability to support the resilience of marine biota. Governance directly influences whether resilience is undermined, preserved or strengthened (McCook et al. 2007). As noted in a 2009 House of Representatives Standing Committee report: “Given the projected severe impacts on the coastal zone from climate change … and the urgent need for adaptation strategies and resilience building, any hesitation in addressing the issues concerning governance arrangements for the coastal zone could have severe consequences”.
Furthermore, the “cornerstone of future success is an adaptive governance structure in which ecosystem management understanding is operationalized in day-to-day activities” (Barnes & McFadden 2008, p. 391). These conclusions point to a need for coherent and adaptive systems of marine biodiversity governance, planning and management. By providing understandings and strategies for this ‘future success’, we will answer the following high and medium priority NARP questions:
1. How should conservation managers and planners adapt their practices to ameliorate climate change risks and enhance adaptation?
2. What intervention strategies addressing nature conservation outcomes will increase system resilience?
3. How will governance for the conservation of marine biodiversity need to change to adapt to climate change impacts?
4. What are the barriers to implementing adaptation and effective policy responses?
The project will engage with conservation planning instituted under the National Oceans Policy, examining institutional governance, decision-making processes and types of instruments being deployed. Our research also addresses priorities established in state strategies – in NSW for example, the discussion paper on a new biodiversity strategy identified a need to refine adaptation planning and integrated management of marine reserves.
Objectives: 1. To identify the requirements for adaptive marine biodiversity conservation governance and management in the context of climate change 2. To assess how well current regimes, with a particular focus on marine protected areas, meet these requirements, and determine any necessary changes 3. To identify alternatives to current regimes that are likely to enhance adaptivity and assess their governance and management effectiveness 4. To offer advice to governance and management authorities on how regime reform might be achieved Read moreRead less
Modelling policy interventions to protect Australia's food security in the face of environmental sustainability challenges . This project will use an innovative scenario modelling approach to quantify the potential impacts of population growth and emerging climate and environmental challenges on Australia’s future food security. In collaboration with an advisory committee it will specify and prioritise policy solutions in terms of their social and economic credentials.
Determination Of Spawning Areas For King George Whiting In South-eastern Australia Using Hydrodynamic Modelling
Funder
Fisheries Research and Development Corporation
Funding Amount
$152,830.00
Summary
Objectives: 1. To use spawning dates estimated from otoliths of post-larvae collected in bays and inlets of Victoria, and reverse modelling with the VIMS Bass Strait Model based on climatic conditions over the developmental period, to estimate spawning sites of King George whiting in Bass Strait or beyond.