Developing new methods to retrieve and analyse preserved genetic information. This project will position Australia at the leading edge of research into preserved DNA, and will use innovative molecular biology approaches to develop a range of new forensic, archaeological and medical applications. It will build Australian knowledge and scientific capacity by developing core expertise and training personnel in areas important for biosecurity, customs and quarantine, forensics/counter-terrorism, and ....Developing new methods to retrieve and analyse preserved genetic information. This project will position Australia at the leading edge of research into preserved DNA, and will use innovative molecular biology approaches to develop a range of new forensic, archaeological and medical applications. It will build Australian knowledge and scientific capacity by developing core expertise and training personnel in areas important for biosecurity, customs and quarantine, forensics/counter-terrorism, and studies of climate change. It will also create and foster research innovation in molecular biology with spin-offs for evolution, archaeology, medical and conservation biology research, and will also encourage involvement with the rapidly expanding field of genomics and bioinformatics.Read moreRead less
High performance cast magnesium alloys. Reducing the weight of cars, particularly their engines, enables substantial reductions in fuel consumption and greenhouse gas emissions. A new generation of magnesium alloys will be developed by this project for the manufacture of considerably lighter components with improved mechanical performance for powertrain and structural applications.
Advancing unsteady bluff body aerodynamics: applications to elite cycling. Delivering a better understanding of unsteady wakes has real potential to further our future capabilities of reducing bluff body parasitic drag. The national benefit derived from this project is the advancement of knowledge of a complex fluid mechanics problem, with secondary benefits arising from the specific and practical application to sports aerodynamics. By better understanding the wake structure and its interaction ....Advancing unsteady bluff body aerodynamics: applications to elite cycling. Delivering a better understanding of unsteady wakes has real potential to further our future capabilities of reducing bluff body parasitic drag. The national benefit derived from this project is the advancement of knowledge of a complex fluid mechanics problem, with secondary benefits arising from the specific and practical application to sports aerodynamics. By better understanding the wake structure and its interaction with a locally oscillating bluff body this knowledge can feed into the field of active flow control in the transport sector. The potential for emissions mitigation by lowering aerodynamic losses in the ground transportation section through active aerodynamic control is significant.Read moreRead less
Next generation easy-clean lenses by robust liquid-repellent nanotextures. This project aims to produce better performing self-cleaning lenses, which are less likely to get dirty and are easy to clean. It will develop water and oil repellent coatings with superior optical transparency and mechanical, solvent and UV stability for both hard coated and anti-reflection coated optical lenses. Engineering of stable, ultra-liquid repellent nanomaterials on transparent surfaces will create a foundation ....Next generation easy-clean lenses by robust liquid-repellent nanotextures. This project aims to produce better performing self-cleaning lenses, which are less likely to get dirty and are easy to clean. It will develop water and oil repellent coatings with superior optical transparency and mechanical, solvent and UV stability for both hard coated and anti-reflection coated optical lenses. Engineering of stable, ultra-liquid repellent nanomaterials on transparent surfaces will create a foundation of knowledge for the industrial development of the future generation of easy care coatings, with vast application potential.Read moreRead less
Laser cleaning processes for Roads and Maritime Services bridges. This project aims to develop innovative laser cleaning processes to conserve the structural integrity and iconic status of the Sydney Harbour Bridge. New laser technologies offer the opportunity to remove lead-based paint and clean the bridge’s metal structures and granite pylons offering advantages unavailable with current techniques. The expected outcomes will be new best-practice laser conservation techniques usable for both ha ....Laser cleaning processes for Roads and Maritime Services bridges. This project aims to develop innovative laser cleaning processes to conserve the structural integrity and iconic status of the Sydney Harbour Bridge. New laser technologies offer the opportunity to remove lead-based paint and clean the bridge’s metal structures and granite pylons offering advantages unavailable with current techniques. The expected outcomes will be new best-practice laser conservation techniques usable for both hand-held and automated systems to preserve one of the most iconic bridges in the world. This will reduce maintenance frequency and cost, restore the beauty of the bridge, retain its engineering significance and provide a baseline process for cleaning of other historical large scale metal and stone heritage objects.Read moreRead less
Innovative enhancement and management of threatened temperate woodlands for improved biodiversity conservation. We will test the broad question: Does woodland management affect woodland biota, and if so, which groups and in what ways? To answer this, we will quantify the effects of major woodland treatments (prescribed fire, timber addition, grazing control) on animals. We will implement a long-term, large-scale 'natural experiment' to provide critical data & analyses on the simultaneous effects ....Innovative enhancement and management of threatened temperate woodlands for improved biodiversity conservation. We will test the broad question: Does woodland management affect woodland biota, and if so, which groups and in what ways? To answer this, we will quantify the effects of major woodland treatments (prescribed fire, timber addition, grazing control) on animals. We will implement a long-term, large-scale 'natural experiment' to provide critical data & analyses on the simultaneous effects of management regimes on woodland biota. A key outcome will be an improved understanding of woodland biota response to management critical for use on grazing properties, reserves, travelling stock routes in rural south-eastern Australia. This will be a major step forward given that temperate woodlands are among Australia's most threatened vegetation types.Read moreRead less
Development and Testing of an Australia-wide Biodiversity Conservation Assessment and Planning System. This project aims to develop and test a Conservation Planning System that can be used by governments, industry, land managers and other stakeholders concerned with the long-term conservation of Australia's biodiversity. The project comprises three interrelated research foci: (1) addressing knowledge gaps about large scale ecological processes critical to long term biodiversity conservation toge ....Development and Testing of an Australia-wide Biodiversity Conservation Assessment and Planning System. This project aims to develop and test a Conservation Planning System that can be used by governments, industry, land managers and other stakeholders concerned with the long-term conservation of Australia's biodiversity. The project comprises three interrelated research foci: (1) addressing knowledge gaps about large scale ecological processes critical to long term biodiversity conservation together with the landscape linkages needed to maintain their integrity; (2) developing and testing a new computer based conservation assessment and planning tool that incorporates information about these ecological processes; and (3) investigating how these can be used to facilitate biodiversity conservation assessment and planning.Read moreRead less
Towards sustainable floodplain communities: Assessing River Red Gum health. Floodplain vegetation in Australia has suffered severe degradation from river regulation but there is limited understanding of the functioning, responses and requirements of the ecosystem's most critical species, the River Red Gum. We will address three knowledge gaps needed for effective management of floodplain river red gums by assessing current and past health, determining stressors affecting health and by building ....Towards sustainable floodplain communities: Assessing River Red Gum health. Floodplain vegetation in Australia has suffered severe degradation from river regulation but there is limited understanding of the functioning, responses and requirements of the ecosystem's most critical species, the River Red Gum. We will address three knowledge gaps needed for effective management of floodplain river red gums by assessing current and past health, determining stressors affecting health and by building a model for predicting future health based on projected trends. Outcomes from this study will help land managers to prioritise environmental flow allocations based on the requirements for sustaining future river red gum populations.Read moreRead less
Snails to the rescue! Conservation of Australia’s island invertebrates. This project aims to deliver an exemplar industry network model for conservation on Australia’s islands which are hotspots both of biodiversity and of extinctions. Protecting species on islands is therefore key to securing Australia’s biodiversity. We will secure Norfolk Island's 60 species of land snails via in situ and ex situ conservation with six key industry partners. The project expects to unite conservation actions ac ....Snails to the rescue! Conservation of Australia’s island invertebrates. This project aims to deliver an exemplar industry network model for conservation on Australia’s islands which are hotspots both of biodiversity and of extinctions. Protecting species on islands is therefore key to securing Australia’s biodiversity. We will secure Norfolk Island's 60 species of land snails via in situ and ex situ conservation with six key industry partners. The project expects to unite conservation actions across research, governments, and industry. Expected outcomes of this project include Norfolk Island emerging as a leader in global conservation. This should provide significant benefits such as a model for conservation that is applicable to thousands of isolated, range-restricted invertebrate species across Australia.Read moreRead less
Metapopulation and habitat quality: towards an integrated approach to the conservation of an endangered grassland lizard. Our research will provide the basis upon which the grassland earless dragon can be removed from its endangered status and provide a template for the future science based management of other endangered species. Australia will gain through this project by reducing its risk of losing yet another species through inappropriate management.