New technology for designing advanced surface textures. This project aims to develop new methods for the characterisation of advanced textures to aid the manufacturing industry. There is an increasing demand for surfaces with various texture patterns manufactured by modern industry. Thus, novel texture characterisation methods are needed. New methods will allow for optimisation of surface textures for example for improved energy efficiency, bone growth in artificial implants, and others.
Ethics and aesthetics as criteria for innovation: A design research study of biological art and digital architecture. The project will contribute to the goal of promoting innovation in three areas. First, the project will amplify Australia's individual strengths in biological art and digital architecture by creating a network of artists and designers in which each discipline is stimulated by the concerns and practices of the other. Second, the project will explain innovation in such networks, by ....Ethics and aesthetics as criteria for innovation: A design research study of biological art and digital architecture. The project will contribute to the goal of promoting innovation in three areas. First, the project will amplify Australia's individual strengths in biological art and digital architecture by creating a network of artists and designers in which each discipline is stimulated by the concerns and practices of the other. Second, the project will explain innovation in such networks, by identifying activities that lead to innovation. Such an explanation will improve the nation's capacity to promote innovation in targeted fields. Third, the project will test and develop collaboration tools designed to support the activities identified as leading to innovation, as information technology is a primary enabler for operating across such networks.
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Design practice research: uncovering the role of spatial intelligence in designing and in reviewing design of the built environment. This project will result in the identification and methodical analysis of spatial intelligence as deployed by Architects, Landscape Architects and Urban Designer practitioners. It will also explore improvements and invention of new design policies and design procurement procedures which are informed by deeper understandings of Spatial Intelligence.
Drivers and barriers to sustainability in residential and commercial buildings. In acknowledging that climate change is one of the greatest moral and economic challenges of our time, the federal Government is committed to Australia's internationally agreed target of limiting greenhouse gas emissions. In its efforts to achieve this, the Government is supporting various initiatives including the development of renewable energy technology. In Australia, buildings contribute almost one-quarter of ou ....Drivers and barriers to sustainability in residential and commercial buildings. In acknowledging that climate change is one of the greatest moral and economic challenges of our time, the federal Government is committed to Australia's internationally agreed target of limiting greenhouse gas emissions. In its efforts to achieve this, the Government is supporting various initiatives including the development of renewable energy technology. In Australia, buildings contribute almost one-quarter of our greenhouse gas emissions. This research will identify methods that assist in the nationwide uptake of sustainability practices, including the use of micro-generation technology, to help improve building performance and reduce greenhouse gas emissions.Read moreRead less
Development of design and analysis methods for blast-resistant window structures. More than 80 per cent of casualties in explosion events are caused by glass shards from fractured windows. This project aims to develop design guidelines for blast-resistant windows, develop numerical methods to predict window failure and fragmentation, and investigate the effectiveness of various window-strengthening measures for life and property protection.
Improved analysis and design of structures to resist blast and impact. This project aims to develop an improved single-degree-of-freedom (SDOF) model which can be easily used in design analysis by engineers and yield accurate structural response predictions in analysis of structures subjected to blast and impact loads. Current practice uses SDOF models in analysis of structures subjected to blast and impact loads, however many experimental tests and high fidelity numerical simulations have revea ....Improved analysis and design of structures to resist blast and impact. This project aims to develop an improved single-degree-of-freedom (SDOF) model which can be easily used in design analysis by engineers and yield accurate structural response predictions in analysis of structures subjected to blast and impact loads. Current practice uses SDOF models in analysis of structures subjected to blast and impact loads, however many experimental tests and high fidelity numerical simulations have revealed the SDOF analysis does not always lead to accurate structural response predictions. This project will develop an improved SDOF model, which can be easily used in design analysis by engineers and yield accurate structural response predictions. These will lead to more economical designs and robust structures that resist blast and impact loads.Read moreRead less
Development of Precast Concrete Segmental Columns to Resist Dynamic Loads. Using precast segmental concrete columns in structures improves the construction efficiency and site safety, leads to better construction quality control, and reduces the construction cost, site disruption and environmental impacts. The performance of segmental columns to resist earthquake and blast loads is not well studied yet. As a structure might be subject to such loads during its service life, understanding its resi ....Development of Precast Concrete Segmental Columns to Resist Dynamic Loads. Using precast segmental concrete columns in structures improves the construction efficiency and site safety, leads to better construction quality control, and reduces the construction cost, site disruption and environmental impacts. The performance of segmental columns to resist earthquake and blast loads is not well studied yet. As a structure might be subject to such loads during its service life, understanding its resistance capacities is essential for structural safety. This project aims to perform experimental and numerical investigations to study the performance of precast segmental concrete columns under earthquake and blast loads, and develop analytical and design methods for applications of such columns in building and bridge structures.Read moreRead less
Catastrophe: a historical and philosophical assessment of urban disaster, ethics and the built environment. This project provides a comprehensive framework for the re-evaluation of civil society in relation to the built environment. It proposes that ‘safeguarding Australia’ and understanding its place in the world can begin by looking at urban planning and architecture, the perceptions that define them, and the catastrophic risks that attend them.
Advancing laterally loaded pile analysis. This project will replace out-of-date solution techniques for the design of pile foundations subjected to wind, waves and other horizontally applied forces and, in so doing, lead to more efficient designs of the foundations for structures such as elevated highways, tall buildings, bridges, jetties, towers, wind turbines and offshore platforms.
Bifurcation analysis with applications to design of power electronics systems. This project represents a fundamental study of nonlinear dynamics in power electronics systems. We expect that this project will result in knowledge advancement and technological innovations. In particular, rigorous algorithms will be resulted for the identification and analysis of nonlinear phenomena in power electronics systems. Special attention will be paid to design applications of power electronics systems. The ....Bifurcation analysis with applications to design of power electronics systems. This project represents a fundamental study of nonlinear dynamics in power electronics systems. We expect that this project will result in knowledge advancement and technological innovations. In particular, rigorous algorithms will be resulted for the identification and analysis of nonlinear phenomena in power electronics systems. Special attention will be paid to design applications of power electronics systems. The successful implementation of these methods and algorithms will definitely lead to development of frontier technology in engineering science, which is a National Priority Goal. Read moreRead less