高清福利片

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Zero emissions energy and industry

Expanding options for renewable energy and industry

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We鈥檙e investigating ways to optimise renewable power and power storage systems to provide reliable, low-cost renewable electricity.

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We鈥檙e also researching low-cost pathways to zero emissions fuels, such as green hydrogen, for sectors where fixed renewable electricity networks aren鈥檛 a suitable energy source. These include heavy industry, agriculture and transport.

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Research projects

Hydrogen embrittlement is a major hurdle on the path to a future decarbonised society fuelled by green hydrogen. In short, hydrogen embrittles metallic components in an unpredictable and catastrophic fashion. 高清福利片 aims to achieve a mechanistic understanding of the hydrogen embrittlement process and identify material technology solutions that will enable safe hydrogen pipeline transmission and vessel storage at scale.

Australia鈥檚 gas pipeline network is worth $300-billion. The outcomes of NZI鈥檚 research in this space will protect the existing, highly valuable infrastructure from hydrogen embrittlement, ensuring the safe delivery of hydrogen fuel across the country. This will facilitate Australia鈥檚 transition to a hydrogen economy and net zero emissions.

Research themes:

  • Using advanced microscopy techniques to observe the behaviours of hydrogen atoms in metallic materials and how they initiate failures at small scales
  • Determining the susceptibilities of individual microstructural features to hydrogen embrittlement
  • Developing a microstructural design strategy that can lead to materials with sufficient hydrogen embrittlement resistance

Lead: Dr Eason Chen

Team: Professor聽, Dr聽, Dr聽, Ranming Niu, Professor聽, Professor聽, Professor聽, Professor聽, Professor聽, Professor聽

We're boosting the productivity and profitability of wind farms through advanced real time digital twins.

A digital twin enables a reduction in power losses due to aerodynamics interactions, fast identification of faulty wind turbines, and mitigation of excessive unscheduled maintenance and operation costs.

Our work will allow the operators of wind farms to better forecast short and long-term power outputs and so enable them to participate more effectively in the electricity markets.

The potential annual benefits to Australian wind farms range from $250 million to $1bn.

Research themes:Data Driven Computational Engineering: how can near-real time, high fidelity, physics informed data driven models transform wind farm profitability and operations?

Research themes:

  • Data Driven Computational Engineering: how can near-real time, high fidelity, physics informed data driven models transform wind farm profitability and operations?

  • Optimise while you learn: can statistical approaches to data driven high and low fidelity modelling deliver accurate faster-than real time digital twins needed to provide accurate forecasts?

  • Power system and Structural: can power systems, aerodynamic, structural and predictive maintenance models be combined to both improve power output and reduce unscheduled maintenance?

Lead: Professor聽

Team: Professor聽, Professor聽, Professor聽,聽Associate Professor聽, Professor聽, Dr聽, Dr Michael Groom,聽Associate Professor聽, Dr Gareth Vio

高清福利片 tackles the challenges surrounding the use of Powerfuels in combustion systems and fuel cells. We aim to facilitate Powerfuel production and utilisation by developing novel, efficient, and cost-effective technologies for synthesising ammonia (NH3) and enhancing carbon sequestration from point sources and direct air capture.

We are addressing fundamental issues to expedite the implementation of green fuels in combustion systems and create efficient, durable, and stable fuel-cell technologies for various applications, ranging from household power to transport. Green fuels, essential for decarbonising heavy industries, are considered carbon-neutral or carbon-negative alternatives to fossil fuels, deriving from renewable energy sources.

Production of Powerfuels research themes:

  • Plasma driven electrochemical synthesis of ammonia and green fuels
  • Converting organic waste resources to Biofuels and Chemicals
  • Converting CO2聽to chemicals including green methane, methanol formaldehyde and associated advanced catalysis
  • Alternative electrolysers architectures
  • Developing advanced catalysts for water electrolysis and fuel cells
  • Process Systems Engineering: Systems modelling and optimisation, process design and integration, modelling power fuels eco-industrial precincts, energy from waste, and waste heat recovery
  • Efficient transition of metal/carbon water splitting electrocatalysts for hydrogen production
  • Development of porous electromaterials for Hydrogen Production and Energy Storage, and Low-cost, robust, high-activity water splitting electrodes
  • Sustainable production of hydrogen and fuels from solid wastes, biomass, and greenhouse gas via catalytic transformation
  • Low-pressure NH3聽synthesis using new catalysts to enhance the energy efficiency and to promote the green production of ammonia

Storage of Powerfuels research themes:

  • Developing advanced materials to store ammonia safely
  • Developing and deploying new solar thermal-driven (renewable process heat) industrial processes (heat battery, Solar reactor, concentrated solar thermal processes)
  • Carbon capture and utilisation (CCU) and integration with carbon market and policy: developing low emissions technology for capturing carbon emissions to produce value-added products such as fuels and chemicals

Effective utilisation of Powerfuels research themes:

  • Investigating turbulent combustion of H2-NH3-Hydrocarbon mixtures: exploring the effects of differential diffusion and compositional inhomogeneity
  • Investigating atomisation characteristics and turbulent combustion of ammonia sprays
  • Conducting computations of preferential diffusion, instabilities, and finite-rate chemistry in turbulent flames of H2-NH3 mixtures
  • Improving safety of H2 utilisation through experiments and modelling of fuel leak dispersion and explosions
  • Improving fuel cell efficiency and applications
  • Designing novel fuel cell architectures for high power Density.

Lead: Professor聽

Team:聽Associate Professor聽, Professor聽, Dr聽, Professor聽, Associate Professor聽, Professor聽, Professor聽, Professor聽, Professor聽, Associate Professor聽,听笔谤辞蹿别蝉蝉辞谤听,聽Associate Professor聽,聽Associate Professor聽, Professor聽, Dr聽Arman Siahvashi.

高清福利片 aims to relieve energy shortage and improve global sustainability through converting greenhouse gas, (CO2, CH4, and NOx etc) into valuable fuels and chemicals.

Greenhouse gases conversion and utilisation are of great ecological & economic significance. Its optimal and wide utilisation could contribute to a more sustainable future and offer an opportunity for Net-Zero Industry transition.

Research themes:

  • The development of novel, high-efficient technologies for the selective conversion of carbon dioxide into value-added chemicals such as methanol, ethanol etc.
  • Fabricating economic and durable material for capturing and converting both carbon dioxide and methane into hydrogen and valuable chemicals.
  • Exploring low-emission, sustainable, and stable technologies to produce fertiliser from greenhouse gases.
  • Maximising the carbon credits and economics for GHG reduction processes.

Lead: Professor聽, Professor聽, Professor聽,听笔谤辞蹿别蝉蝉辞谤听,聽Associate Professor聽,听笔谤辞蹿别蝉蝉辞谤听, Professor聽, Dr聽, Dr Shenlong Zhao, Weibin Liang