
Heraeus (United Kingdom)
Heraeus (United Kingdom)
5 Projects, page 1 of 1
assignment_turned_in Project2008 - 2010Partners:University of Nottingham, VESUVIUS UK LTD, NTU, Vesuvius (United Kingdom), Okayama Ceramics Research Foundation +3 partnersUniversity of Nottingham,VESUVIUS UK LTD,NTU,Vesuvius (United Kingdom),Okayama Ceramics Research Foundation,Okayama Ceramics Research Foundation,Heraeus Electro-Nite,Heraeus (United Kingdom)Funder: UK Research and Innovation Project Code: EP/F059728/1Funder Contribution: 131,519 GBPAbstracts are not currently available in GtR for all funded research. This is normally because the abstract was not required at the time of proposal submission, but may be because it included sensitive information such as personal details.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2010 - 2011Partners:Vesuvius (United Kingdom), University of Exeter, University of Exeter, Okayama Ceramics Research Foundation, VESUVIUS UK LTD +4 partnersVesuvius (United Kingdom),University of Exeter,University of Exeter,Okayama Ceramics Research Foundation,VESUVIUS UK LTD,Heraeus Electro-Nite,UNIVERSITY OF EXETER,Okayama Ceramics Research Foundation,Heraeus (United Kingdom)Funder: UK Research and Innovation Project Code: EP/F059728/2Abstracts are not currently available in GtR for all funded research. This is normally because the abstract was not required at the time of proposal submission, but may be because it included sensitive information such as personal details.
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For further information contact us at helpdesk@openaire.eumore_vert All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=ukri________::95b857d7b2feb5a36d4129a42cd69c93&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euassignment_turned_in Project2009 - 2012Partners:Okayama Ceramics Research Foundation, Vesuvius (United Kingdom), University of Sheffield, VESUVIUS UK LTD, Heraeus Electro-Nite +4 partnersOkayama Ceramics Research Foundation,Vesuvius (United Kingdom),University of Sheffield,VESUVIUS UK LTD,Heraeus Electro-Nite,University of Sheffield,[no title available],Heraeus (United Kingdom),Okayama Ceramics Research FoundationFunder: UK Research and Innovation Project Code: EP/F059159/1Funder Contribution: 300,291 GBPCarbon-containing refractory bricks (CCRBs) are one of the most important materials for the iron and steel industry worldwide, e.g. Corus alone spends over 200M/annum on refractories of which 70-80% are carbon-containing refractories. However, their two critical drawbacks, poor oxidation resistance and poor mechanical properties (low mechanical strength and poor erosion resistance), significantly reduce their service life in many applications. Whilst the poor oxidation resistance can now be improved via additions of antioxidants and/or formation of refractory coatings on graphite, the issue of poor mechanical properties has yet to be solved. In this programme, based upon the applicants' extensive experience in R & D of refractories and expertise on nanofibre/tube fabrication, the design and development of a novel and commercially-viable catalytic-growth technique is proposed that can create large quantities of in-situ carbon nanotubes in CCRBs, aiming to improve substantially their mechanical strength and erosion resistance (by >50%) and service durability (by >25%). This programme, in addition to its academic significance for in-situ nanostructure design, will undoubtbly benefit the refractory and steel industries by providing high quality refractory materials at low-cost.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2019 - 2028Partners:Qioptiq Ltd, Nantes University, Vestas (Denmark), Rolls-Royce Plc (UK), Victrex plc +70 partnersQioptiq Ltd,Nantes University,Vestas (Denmark),Rolls-Royce Plc (UK),Victrex plc,Harvard University,University of Michigan–Flint,TU Dresden,Offshore Renewable Energy Catapult,TUD,Deakin University,RMIT University,Zhejiang University,NTU,UT System,ELG Carbon Fibre (United Kingdom),Airbus (United Kingdom),Airbus Operations Limited,University of Bristol,UBC,Victrex (United Kingdom),Centre for Process Innovation CPI (UK),University of Michigan–Ann Arbor,FiberLean Technologies,INSA de Lyon,Deakin University,RMIT,CHOMARAT,GKN Aerospace Services Ltd,Oxford Space Systems,ZJOU,UD,Heraeus Noblelight Ltd,Oxford Space Systems,Composites Leadership Forum,ELG Carbon Fibre Ltd,University of Nantes,Harvard University,University of Leuven,University of Bristol,Luleå University of Technology,Cytec Industries Inc,Qinetiq (United Kingdom),GKN Aerospace Services Ltd,Institut National des Sciences Appliquées de Lyon,University of Leuven,Hexcel (United Kingdom),Solvay Group (UK),University of Delaware,Rolls-Royce (United Kingdom),AIRBUS OPERATIONS LIMITED,Harvard University,RMIT University,Composites Leadership Forum,Lulea University of Technology,Massachusetts Institute of Technology,OFFSHORE RENEWABLE ENERGY CATAPULT,Hong Kong University of Science and Tech,University of Delaware,Centre for Process Innovation,Rolls-Royce (United Kingdom),KU Leuven,University of Nottingham,Vestas (Denmark),CPI,FiberLean Technologies,Heraeus (United Kingdom),Hexcel,Heraeus Noblelight Ltd,Massachusetts Institute of Technology,Offshore Renewable Energy Catapult,Texas A&M University,Massachusetts Institute of Technology,CHOMARAT,Technical University DresdenFunder: UK Research and Innovation Project Code: EP/S021728/1Funder Contribution: 6,652,520 GBPWe will launch a new CDT, focused on composite materials and manufacturing, to deliver the next generation of composites research and technology leaders equipped with the skills to make an impact on society. In recent times, composites have been replacing traditional materials, e.g. metals, at an unprecedented rate. Global growth in their use is expected to be rapid (5-10% annually). This growth is being driven by the need to lightweight structures for which 'lighter is better', e.g. aircraft, automotive car bodywork and wind blades; and by the benefits that composites offer to functionalise both materials and structures. The drivers for lightweighting are mainly material cost, fuel efficiency, reducing emissions contributing to climate change, but also for more purely engineering reasons such as improved operational performance and functionality. For example, the UK composites sector has contributed significantly to the Airbus A400M and A350 airframes, which exhibit markedly better performance over their metallic counterparts. Similarly, in the wind energy field, typically, over 90% of a wind turbine blade comprises composites. However, given the trend towards larger rotors, weight and stiffness have become limiting factors, necessitating a greater use of carbon fibre. Advanced composites, and the possibility that they offer to add extra functionality such as shape adaptation, are enablers for lighter, smarter blades, and cheaper more abundant energy. In the automotive sector, given the push for greener cars, the need for high speed, production line-scale, manufacturing approaches will necessitate more understanding of how different materials perform. Given these developments, the UK has invested heavily in supporting the science and technology of composite materials, for instance, through the establishment of the National Composites Centre at the University of Bristol. Further investments are now required to support the skills element of the UK provision towards the composites industry and the challenges it presents. Currently, there is a recognised skills shortage in the UK's technical workforce for composites; the shortage being particularly acute for doctoral skills (30-150/year are needed). New developments within industry, such as robotic manufacture, additive manufacture, sustainability and recycling, and digital manufacturing require training that encompasses engineering as well as the physical sciences. Our CDT will supply a highly skilled workforce and technical leadership to support the industry; specifically, the leadership to bring forth new radical thinking and the innovative mind-set required to future-proof the UK's global competitiveness. The development of future composites, competing with the present resins, fibres and functional properties, as well as alternative materials, will require doctoral students to acquire underpinning knowledge of advanced materials science and engineering, and practical experience of the ensuing composites and structures. These highly skilled doctoral students will not only need to understand technical subjects but should also be able to place acquired knowledge within the context of the modern world. Our CDT will deliver this training, providing core engineering competencies, including the experimental and theoretical elements of composites engineering and science. Core engineering modules will seek to develop the students' understanding of the performance of composite materials, and how that performance might be improved. Alongside core materials, manufacturing and computational analysis training, the CDT will deliver a transferable skills training programme, e.g. communication, leadership, and translational research skills. Collaborating with industrial partners (e.g. Rolls Royce) and world-leading international expertise (e.g. University of Limerick), we will produce an exciting integrated programme enabling our students to become future leaders.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2021 - 2024Partners:F.I.C (UK) Limited, NWL, Celsa Steel UK, British Ceramic Confederation, Cranfield University +128 partnersF.I.C (UK) Limited,NWL,Celsa Steel UK,British Ceramic Confederation,Cranfield University,North East of England Process Industry Cluster (United Kingdom),IS Instruments (United Kingdom),Kimberly-Clark Limited (UK),Power Minerals Ltd,Norton Aluminium Ltd,Constellium UK Ltd,Trent Refractories Ltd,Jayplas (J&A Young (Leicester) Ltd),Luxfer MEL Technologies,Fives Stein Limited,Liberty House Group (UK),F.I.C (UK) Limited,Society of Glass Technology,AMETEK (UK),Cast Metals Federation,AkzoNobel UK,Institute of Materials, Minerals and Mining,CRANFIELD UNIVERSITY,Knowledge Transfer Network,Alpek Polyester UK Ltd,Sheffield Refractories Ltd,North East Process Industry ClusterNEPIC,Constellium (United Kingdom),CRODA EUROPE LTD,Glass Technology Services Ltd GTS,NETZSCH (UK),Materials Processing Institute (MPI),Vesuvius (United Kingdom),Saica Paper UK Ltd,International Synergies Ltd,Society of Glass Technology,Zentia (Ceiling Solutions Limited) (UK),International Synergies Ltd,Jayplas (J&A Young (Leicester) Ltd),Encirc Ltd,LafargeHolcim,Glass Futures Ltd,Emerson Advanced Design Center,Capital Refractories Limited,CRODA EUROPE LIMITED,Magnet Applications Ltd,Ansys UK Ltd,Greenology (Teeside) Limited,Morgan Advanced Materials,Breedon Cement Ltd,Lucideon (United Kingdom),CLT Carbon Limiting Technologies,VESUVIUS UK LTD,AkzoNobel (United Kingdom),URM (UK) Limited,Beatson Clark Limited,Saica Paper UK Ltd,Saint Gobain Glass Industry,Aluminium Federation Ltd,Siemens plc (UK),Fives Stein Limited,Imerys,Hanson Heidelberg Cement Group,Chemical Industries Association Ltd,British Ceramic Confederation,URM (UK) Limited,Guardian Industries (United States),Aluminium Federation Ltd,Emerson Advanced Design Center,Norton Aluminium Ltd,Catal International Ltd,Mineral Products Association,Chemical Industries Association Ltd,Saint Gobain Glass Industry,Sheffield Refractories Ltd,Guardian Industries (International),Greenology (Teeside) Limited,British Glass,ANSYS,Confederation of Paper Industries,CLT Carbon Limiting Technologies,Imerys (United Kingdom),Zentia (Ceiling Solutions Limited) (UK),Croda (United Kingdom),Texon (UK),Innovate UK,Bunting Magnetics Europe (UK),NSG Holding (Europe) Limited,Liberty House Group (UK),Morgan Advanced Materials plc (UK),Almath Crucibles Ltd,Cast Metals Federation (United Kingdom),Netzsch Instruments,Morgan Advanced Materials (United Kingdom),Breedon Cement Ltd,Almath Crucibles Ltd,Materials Processing Institute (MPI),Texon (UK),Power Minerals Ltd,CERAM Research,LafargeHolcim (France),North East Process Industry ClusterNEPIC,Heraeus Electro-Nite,Glass Futures Ltd,Diageo plc,Hanson Heidelberg Cement Group,Glass Technology Services,Kimberly-Clark Limited (UK),Mineral Products Association,Alpek Polyester UK Ltd,NSG Group (UK),IS-Instruments Ltd,EnergyNest AS,Industry Wales,Northumbrian Water Group plc,SIEMENS PLC,Diageo (United Kingdom),AkzoNobel UK,IOM3,Capital Refractories Limited,EnergyNest (Norway),British Glass,Industry Wales,Catal International Ltd,KNOWLEDGE TRANSFER NETWORK LIMITED,[no title available],British Glass,Confederation of Paper Industries,Beatson Clark Limited,Celsa Steel UK,Encirc (United Kingdom),Heraeus (United Kingdom),AMETEK UKFunder: UK Research and Innovation Project Code: EP/V054627/1Funder Contribution: 4,836,820 GBPThe Transforming the Foundation Industries Challenge has set out the background of the six foundation industries; cement, ceramics, chemicals, glass, metals and paper, which produce 28 Mt pa (75% of all materials in our economy) with a value of £52Bn but also create 10% of UK CO2 emissions. These materials industries are the root of all supply chains providing fundamental products into the industrial sector, often in vertically-integrated fashion. They have a number of common factors: they are water, resource and energy-intensive, often needing high temperature processing; they share processes such as grinding, heating and cooling; they produce high-volume, often pernicious waste streams, including heat; and they have low profit margins, making them vulnerable to energy cost changes and to foreign competition. Our Vision is to build a proactive, multidisciplinary research and practice driven Research and Innovation Hub that optimises the flows of all resources within and between the FIs. The Hub will work with communities where the industries are located to assist the UK in achieving its Net Zero 2050 targets, and transform these industries into modern manufactories which are non-polluting, resource efficient and attractive places to be employed. TransFIRe is a consortium of 20 investigators from 12 institutions, 49 companies and 14 NGO and government organisations related to the sectors, with expertise across the FIs as well as energy mapping, life cycle and sustainability, industrial symbiosis, computer science, AI and digital manufacturing, management, social science and technology transfer. TransFIRe will initially focus on three major challenges: 1 Transferring best practice - applying "Gentani": Across the FIs there are many processes that are similar, e.g. comminution, granulation, drying, cooling, heat exchange, materials transportation and handling. Using the philosophy Gentani (minimum resource needed to carry out a process) this research would benchmark and identify best practices considering resource efficiencies (energy, water etc.) and environmental impacts (dust, emissions etc.) across sectors and share information horizontally. 2 Where there's muck there's brass - creating new materials and process opportunities. Key to the transformation of our Foundation Industries will be development of smart, new materials and processes that enable cheaper, lower-energy and lower-carbon products. Through supporting a combination of fundamental research and focused technology development, the Hub will directly address these needs. For example, all sectors have material waste streams that could be used as raw materials for other sectors in the industrial landscape with little or no further processing. There is great potential to add more value by "upcycling" waste by further processes to develop new materials and alternative by-products from innovative processing technologies with less environmental impact. This requires novel industrial symbioses and relationships, sustainable and circular business models and governance arrangements. 3 Working with communities - co-development of new business and social enterprises. Large volumes of warm air and water are produced across the sectors, providing opportunities for low grade energy capture. Collaboratively with communities around FIs, we will identify the potential for co-located initiatives (district heating, market gardening etc.). This research will highlight issues of equality, diversity and inclusiveness, investigating the potential from societal, environmental, technical, business and governance perspectives. Added value to the project comes from the £3.5 M in-kind support of materials and equipment and use of manufacturing sites for real-life testing as well as a number of linked and aligned PhDs/EngDs from HEIs and partners This in-kind support will offer even greater return on investment and strongly embed the findings and operationalise them within the sector.
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