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Field of Research : Mineral Processing
Research Topic : Iron
Field of Research : Process Metallurgy
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Mineral Processing (7)
Process Metallurgy (7)
Resources Engineering and Extractive Metallurgy (7)
Fluidization And Fluid Mechanics (2)
Process Control And Simulation (2)
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Reaction Kinetics And Dynamics (1)
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Iron Ores (I.E. Ferrous Ores) (6)
Iron and steel (e.g. ingots, bars, rods, shapes and sections) (5)
Coal (4)
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Coal—other purposes (1)
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Australian Research Council (7)
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  • Researchers (11)
  • Funded Activities (7)
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  • Funded Activity

    Discovery Projects - Grant ID: DP0557970

    Funder
    Australian Research Council
    Funding Amount
    $1,202,000.00
    Summary
    Granular dynamics: theories, modelling and simulation. Particle science and technology is a rapidly developing interdisciplinary research field and is of paramount importance Australia in view of the heavy dependence on raw materials processing. This project will tackle the core problems in this field by developing novel theories and mathematical models to describe the flow of particles. Application of the research outcomes can lead to better process or product control, a decrease in energy cons .... Granular dynamics: theories, modelling and simulation. Particle science and technology is a rapidly developing interdisciplinary research field and is of paramount importance Australia in view of the heavy dependence on raw materials processing. This project will tackle the core problems in this field by developing novel theories and mathematical models to describe the flow of particles. Application of the research outcomes can lead to better process or product control, a decrease in energy consumption and an improvement in productivity, which, together with the research training offered through the conduct of the work, is very helpful to maintaining Australia's leading position in resource, energy, process and allied industries.
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    Funded Activity

    Discovery Projects - Grant ID: DP1097130

    Funder
    Australian Research Council
    Funding Amount
    $340,000.00
    Summary
    Discrete particle modelling and analysis of complex particle-fluid flows. Multiphase processes are widely used in both conventional and modern industries in Australia and worldwide, however rarely reach more than 60% of design capacity because of a poor understanding of their fundamental characteristics. This project aims to overcome this problem using an extensive combined fundamental and applied approach. The resulting theories, computer models and simulation techniques will be applied to imp .... Discrete particle modelling and analysis of complex particle-fluid flows. Multiphase processes are widely used in both conventional and modern industries in Australia and worldwide, however rarely reach more than 60% of design capacity because of a poor understanding of their fundamental characteristics. This project aims to overcome this problem using an extensive combined fundamental and applied approach. The resulting theories, computer models and simulation techniques will be applied to improve process design, control and optimisation. Consequentially, productivity and Australian competitiveness will be significantly enhanced in its most important industries such as minerals, metallurgical, chemical, energy, and materials.
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    Funded Activity

    Linkage Projects - Grant ID: LP0454112

    Funder
    Australian Research Council
    Funding Amount
    $264,000.00
    Summary
    Thermal characterisation of iron ores and coals for HIsmelt operation. Substantial developments in direct reduction ironmaking (DRI) have been recently conducted providing sustainable way for metallurgical operations. The largest advantage of DRI is that it does not require cokemaking and sintering, two processes which are consistently causing environmental concerns. This project aims to thermally investigate coals and iron ores for optimising direct smelting, and to provide insight into effect .... Thermal characterisation of iron ores and coals for HIsmelt operation. Substantial developments in direct reduction ironmaking (DRI) have been recently conducted providing sustainable way for metallurgical operations. The largest advantage of DRI is that it does not require cokemaking and sintering, two processes which are consistently causing environmental concerns. This project aims to thermally investigate coals and iron ores for optimising direct smelting, and to provide insight into effect of the properties of ores and coals on the process. Structural changes using hot stage optical microscopy will be carefully clarified. Finally, a predictive model for DRI and energy requirements for direct smelting based on the experimental outcomes will be developed.
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    Funded Activity

    Linkage Projects - Grant ID: LP0228782

    Funder
    Australian Research Council
    Funding Amount
    $67,635.00
    Summary
    Flow field evaluation of AusIron top submerged injection system. The top submerged gas injection system is widely used in the metallurgical industry in many metal refining processes. The AusIron process, which uses dual top submerged lances injection, has been developed recently for direct smelting of iron ore to produce pig iron using low quality coal as fuel and reductant. Successful implementation of the process requires optimum furnace design. This project aims to study fluid flow within the .... Flow field evaluation of AusIron top submerged injection system. The top submerged gas injection system is widely used in the metallurgical industry in many metal refining processes. The AusIron process, which uses dual top submerged lances injection, has been developed recently for direct smelting of iron ore to produce pig iron using low quality coal as fuel and reductant. Successful implementation of the process requires optimum furnace design. This project aims to study fluid flow within the furnace using a laboratory scale model, plant trials and numerical analysis. The project will enhance our fundamental understanding of the top submerged injection processes and assist in optimising AusIron furnace design.
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    Funded Activity

    Linkage - International - Grant ID: LX0454451

    Funder
    Australian Research Council
    Funding Amount
    $54,000.00
    Summary
    Microdynamic study of the flow of granular materials in bladed mixers. This project aims to develop a comprehensive understanding of granular mixing mechanics in bladed mixers. The study will be carried out by means of newly developed advanced numerical and experimental techniques to generate particle scale information. The flow and mixing behaviour of particles under different conditions will be analysed at both micro- and macro-scopic levels. The research outcomes such as predictive equations .... Microdynamic study of the flow of granular materials in bladed mixers. This project aims to develop a comprehensive understanding of granular mixing mechanics in bladed mixers. The study will be carried out by means of newly developed advanced numerical and experimental techniques to generate particle scale information. The flow and mixing behaviour of particles under different conditions will be analysed at both micro- and macro-scopic levels. The research outcomes such as predictive equations will be tested by simulating and analysing complicated industrial mixing processes; modelling to improve granulation and breakage will be targets. It will significantly improve the design, optimisation and control of mixing processes that are widely used in many industries.
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    Funded Activity

    Linkage - International - Grant ID: LX0776121

    Funder
    Australian Research Council
    Funding Amount
    $64,000.00
    Summary
    Particle scale studies of powder mixing in bladed mixers. Powder handling and processing are widely used in both conventional and modern industries but rarely reach more than 60% of design capacity because of poor fundamental understanding. Such operations are important to Australia in view of the heavy dependence on raw materials processing (about 40% of the GNP). This project will tackle the core problems in powder mixing which is a key operation in many industries. Application of the research .... Particle scale studies of powder mixing in bladed mixers. Powder handling and processing are widely used in both conventional and modern industries but rarely reach more than 60% of design capacity because of poor fundamental understanding. Such operations are important to Australia in view of the heavy dependence on raw materials processing (about 40% of the GNP). This project will tackle the core problems in powder mixing which is a key operation in many industries. Application of the research outcomes can lead to better process or product control, a decrease in energy consumption and an improvement in productivity, which is very helpful to maintaining Australia's leading position in resource, energy, process and allied industries.
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    Funded Activity

    Discovery Projects - Grant ID: DP0665276

    Funder
    Australian Research Council
    Funding Amount
    $200,000.00
    Summary
    Fundamental Studies of the Packing of Cohesive Particles. Particle/powder technology is of paramount importance to Australia in view of its heavy dependence on the handling and processing of raw materials. Particle packing is here a most basic operation. This project will examine the underpinning physics of the packing of cohesive particles and develop novel generic theories and mathematical models for solving packing problems. Its outcomes can lead to better process or product control, a decrea .... Fundamental Studies of the Packing of Cohesive Particles. Particle/powder technology is of paramount importance to Australia in view of its heavy dependence on the handling and processing of raw materials. Particle packing is here a most basic operation. This project will examine the underpinning physics of the packing of cohesive particles and develop novel generic theories and mathematical models for solving packing problems. Its outcomes can lead to better process or product control, a decrease in energy consumption and an improvement in productivity in many processes/operations in mineral/material and relevant industries, which, together with the research training offered, will help strengthen and maintain Australia's leading position in particulate science and technology.
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    Showing 1-7 of 7 Funded Activites

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