Royal Institute of Navigation
Royal Institute of Navigation
4 Projects, page 1 of 1
assignment_turned_in Project2024 - 2029Partners:Severn Trent (United Kingdom), British Telecommunications plc, STL Tech Limited, Department for Transport, ColdQuanta UK Ltd +26 partnersSevern Trent (United Kingdom),British Telecommunications plc,STL Tech Limited,Department for Transport,ColdQuanta UK Ltd,Government Office for Science,Manufacturing Technology Centre (United Kingdom),Torr Scientific Ltd,QLM TECHNOLOGY LTD,National Grid (United Kingdom),Royal Institute of Navigation,National Physical Laboratory,BAE Systems (UK),THALES UK LIMITED,Ordnance Survey,Cerca Magnetics Limited,Network Rail,High Speed Two HS2 Limited,Covesion (United Kingdom),QuSpin (United States),Digistain Limited,ATKINS LIMITED,Metatek-Group Ltd,University of Birmingham,MBDA (United Kingdom),NKT Holding (Denmark),RSK Environmental Ltd,Atomic Weapons Establishment,UK National Authority for Counter-Eavesd,INEX Microtechnology Ltd,Delta g limitedFunder: UK Research and Innovation Project Code: EP/Z533166/1Funder Contribution: 21,369,600 GBPQuantum sensing, imaging and timing will deliver transformative advancements across multiple sectors, including healthcare, infrastructure, transportation, environmental sustainability and security. These technologies make seeing the invisible possible: the inside workings of our brains, the infrastructure buried beneath our feet, the polluting gases in the air around us, the cancers lurking in our tissue or the drones in our crowded skies. These are some of the challenges we are poised to address. Our Hub in Quantum Sensing Imaging and Timing (QuSIT) brings together academic experts and industry partners, collaborating to translate cutting-edge research into tangible innovations. QuSIT will capitalise on a decade of substantial governmental and industrial investments, consolidating expertise and world-class capability from two established UK Hubs: QuantIC, specialising in quantum-enhanced imaging and the UK Sensing and Timing Hub. QuSIT will be a unified centre of excellence, providing thought leadership within the UK's quantum technology landscape, crucial to the National Quantum Strategy. At the heart of QuSIT is a world-leading and diverse team of 45 investigators, comprising both emerging talents and seasoned experts. Their impressive academic track record is complemented by a shared commitment to translating innovation from the laboratory to address real-world challenges. Our researchers have a history of licensing technology to industry and launching their own ventures. The technologies we will exploit are based on both atomic states and entangled photons to create quantum devices that sense and image otherwise invisible optical wavelengths, radio-frequencies, magnetic and gravitational fields, and exploit precision time, including: Optical wavelength translation using non-linear interferometry and non-linear optics Atom interferometry for gravity and gravity gradient sensing Waveguide optics for wavelength conversion Optically pumped magnetometers for zero and high absolute fields Metasurfaces for lightweight and compact optics Wavefront shaping for seeing through obscuration Data fusion of quantum and classical sensor data, using AI and Bayesian Inference Quantum enabled frequency sources to enhance radar systems Our approach revolves around co-creating research with end-users, fostering collaborations between academics and industry players throughout the supply chain, and rigorously testing and refining our innovations through field trials in partnership with our collaborating companies, pursuing new approaches to: Line-of-sight imaging of polluting, or toxic gases and chemicals Monitoring of brain health Screening for concealed and dangerous objects Imaging of underground infrastructure Mid-infrared, holographic microscopes for clinical diagnosis Application of precise timing for the monitoring of congested airspace The hub is supported by companies and other end-users many of which have made significant investments. These include BT, BAE Systems, Department for Transport, Great Ormond Street Hospital, National Grid, National Physical Laboratory, Ordnance Survey and Severn Trent Water. In the increasingly competitive international landscape, QuSIT will provide the vision and have the convening power required to ensure that the UK remains at the forefront of quantum technology internationally, delivering accelerated economic growth and societal benefits through collaboration between academia and industry.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2019 - 2027Partners:Northern Gas Networks, Core Cities UK, Helmholtz Association of German Research Centres, Atkins, ETH Zurich +91 partnersNorthern Gas Networks,Core Cities UK,Helmholtz Association of German Research Centres,Atkins,ETH Zurich,The Ohio State University at Marion,University of Nottingham,Tyne and Wear UTMC (Traffic Control),Royal Institution of Chartered Surveyors,Defence Science and Technology Laboratory,Northumbrian Water Group plc,NTU,GFZ German Research,Newcastle University,Association for Geographical Information,University of Twente,Environment Agency,Northern Gas Networks,Open Geospatial Consortium Inc,Tyne and Wear UTMC (Traffic Control),The Royal Institute of Navigation,RMIT University,ERS Research and Consultancy,OSU,Newcastle University,Newcastle City Council,Newcastle City Council,Defence Science & Tech Lab DSTL,Atkins UK,Sunderland Software City,Chartered Inst. of Civil Eng. Surveyors,ERS Research and Consultancy,University of Oxford,British Geological Survey,Esri (UK) (Watford),Open Geospatial Consortium,Royal Institution of Chartered Surveyors,European Spatial Data Research,RMIT,Satellite Applications Catapult,The Coal Authority,Leica Geosystems Ltd,Microsoft Research,The Coal Authority,European Spatial Data Research,IM Geospatial,Geomatic Ventures (United Kingdom),The Survey Association,Satellite Applications Catapult,NEWCASTLE CITY COUNCIL,Chartered Inst. of Civil Eng. Surveyors,Vienna University of Technology,UoC,Microsoft (United States),University of Leeds,3D Laser Mapping Ltd,University of Calgary,ESA/ESRIN,WHU,TU Wien,Royal Institute of Navigation,IGN (Nat Inst of Geog & Forestry Info),Finnish Geospatial Research InstituteNLS,ESA/ESRIN,RMIT University,University of Leeds,The Survey Association,ENVIRONMENT AGENCY,NWL,Ordnance Survey,3D Laser Mapping Ltd,Veripos Ltd,GFZ,IM Geospatial,Veripos Ltd,ETHZ,Leica Microsystems (United Kingdom),TUW,Finnish Geospatial Research InstituteNLS,Core Cities UK,DEFRA,Simudyne Limited,Simudyne,OS,University of Twente,Defence Science & Tech Lab DSTL,EA,Geomatic Ventures Limited,GFZ German Research,The Ohio State University,Esri (UK) (Watford),Atkins (United Kingdom),Institute Geographic National,Sunderland Software City,NERC British Geological Survey,Association for Geographical InformationFunder: UK Research and Innovation Project Code: EP/S023577/1Funder Contribution: 6,989,840 GBPOn a daily basis huge amounts of geospatial data and information that record location is created across a wide range of environmental, engineered and social systems. Globally approximately 2 quintillion bytes of data is generated daily which is location based. The economic benefits of geospatial data and information have been widely recognised, with the global geospatial industry predicted to be worth $500bn by 2020. In the UK the potential benefits of 'opening' up geospatial data is estimated by the government to be worth an additional £11bn annually to the economy and led to the announcement of a £80m Geospatial Commission. However, if the full economic benefits of the geospatial data revolution are to be realised, a new generation of geospatial engineers, scientists and practitioners are required who have the knowledge, technical skills and innovation to transform our understanding of the ever increasingly complex world we inhabit, to deliver highly paid jobs and economic prosperity, coupled with benefits to society. To seize this opportunity, the Centre for Doctoral Training in Geospatial Systems will deliver technically skilled doctoral graduates equipped with an industry focus, to work across a diverse range of applications including infrastructure systems, smart cities, urban-infrastructure resilience, energy systems, spatial mobility, structural monitoring, spatial planning, public health and social inclusion. Doctoral graduates will be trained in five core integrated geospatial themes: Spatial data capture and interpretation: modern spatial data capture and monitoring approaches, including Earth observation satellite image data, UAVs and drone data, and spatial sensor networks; spatial data informs us on the current status and changes taking place in different environments (e.g., river catchments and cities). Statistical and mathematical methods: innovative mathematical approaches and statistical techniques, such as predictive analytics, required to analyse and interpret huge volumes of geospatial data; these allow us to recognise and quantify within large volumes of data important locations and relationships. Big Data spatial analytics: cutting edge computational skills required for geospatial data analysis and modelling, including databases, cloud computing, pattern recognition and machine learning; modern computing approaches are the only way that vast volumes of location data can be analysed. Spatial modelling and simulation: to design and implement geospatial simulation models for predictive purposes; predictive spatial models allow us to understand where and when investment, interventions and actions are required in the future. Visualisation and decision support: will train students in modern methods of spatial data visualisation such as virtual and augmented reality, and develop the skills on how to deliver and present the outputs of geospatial data analysis and modelling; skills required to ensure that objective decisions and choices are made using geospatial data and information. The advanced training received by students will be employed within interdisciplinary PhD research projects co-designed with 40 partners ranging from government agencies, international engineering consultants, infrastructure operators and utility companies, and geospatial technology companies; organisations that are ideally positioned to leverage of the Big Data, Cloud Computing, Artificial Intelligence and Internet of Things (IoT) technologies that are predicted to be the key to "accelerating geospatial industry growth" into the future. Throughout their training and research, students will benefit from cohort-based activities focused on group-working and industry interaction around innovation and entrepreneurship to ensure that our outstanding researchers are able to deliver innovation for economic prosperity across the spectrum of the geospatial industry and applied user sectors.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2019 - 2024Partners:Geometrics, Jacobs, ESP Central Ltd, Fraunhofer UK Research Ltd, Torr Scientific Ltd +114 partnersGeometrics,Jacobs,ESP Central Ltd,Fraunhofer UK Research Ltd,Torr Scientific Ltd,Oxford Electromagnetic Solutions Limited,BAE Systems (UK),Severn Trent Group,PA CONSULTING SERVICES LIMITED,Atkins Global (UK),The Coal Authority,BP International Limited,Qinetiq (United Kingdom),USYD,Knowledge Transfer Network Ltd,Atkins Global,ESP Central (United Kingdom),ITM,Forresters,QuSpin (United States),Cardno,Defence Science & Tech Lab DSTL,Laser Quantum Ltd,Ordnance Survey,M Squared Lasers (United Kingdom),Shield,PA Consulting Group,MTC,Geomatrix,Torr Scientific Ltd,Bridgeporth,Geometrics,Oxford Electromagnetic Solutions Limited,BALFOUR BEATTY RAIL,Airbus Defence and Space,e2v technologies plc,BP (United Kingdom),Severn Trent Group,RSK Group plc,OS,General Lighthouse Authorities,Unitive Design and Analysis Ltd.,General Lighthouse Authorities,J Murphy & Sons Limited,Nemein,Magnetic Shields Limited,Magnetic Shields Limited,Leonardo MW Ltd,British Telecommunications Plc,Royal IHC (UK),Defence Science and Technology Laboratory,Collins Aerospace,BAE Systems (United Kingdom),National Centre for Trauma,Fraunhofer UK Research Ltd,Manufacturing Technology Centre (United Kingdom),Forresters,Atkins (United Kingdom),Cardno,PA Consultancy Services Ltd,RSK Group plc,Northrop Gruman (UK),BALFOUR BEATTY PLC,BT Research,Airbus (United Kingdom),ITM Monitoring,MBDA UK Ltd,The Coal Authority,Qioptiq Ltd,Balfour Beatty (United Kingdom),BP INTERNATIONAL LIMITED,MBDA (United Kingdom),M Squared Lasers (United Kingdom),Royal IHC (UK),Bridgeporth,Ferrovial (United Kingdom),National Centre for Trauma,Added Scientific Ltd,Royal Institute of Navigation,National Physical Laboratory,Airbus Defence and Space,Novanta (United Kingdom),Amey Plc,BAE Systems (Sweden),J Murphy & Sons Limited,Skyrora Limited,RedWave Labs,Nemein,RedWave Labs,Knowledge Transfer Network,AWE,Atomic Weapons Establishment,Collins Aerospace,Geomatrix,Skyrora Limited,Network Rail,Northrop Gruman,Severn Trent (United Kingdom),Teledyne e2v (United Kingdom),Oxford Instruments (United Kingdom),NPL,Re:Cognition Health Limited,Oxford Instruments (United Kingdom),XCAM Ltd (UK),University of Birmingham,The Royal Institute of Navigation,QuSpin,Unitive Design & Analysis Ltd,Jacobs (United States),Shield Therapeutics (United Kingdom),Added Scientific Ltd,Canal and River Trust,Defence Science & Tech Lab DSTL,BT,Canal & River Trust,Network Rail,University of Birmingham,Re:Cognition Health,XCAM LtdFunder: UK Research and Innovation Project Code: EP/T001046/1Funder Contribution: 28,537,600 GBPThe Quantum Technology Hub in Sensors and Timing, a collaboration between 7 universities, NPL, BGS and industry, will bring disruptive new capability to real world applications with high economic and societal impact to the UK. The unique properties of QT sensors will enable radical innovations in Geophysics, Health Care, Timing Applications and Navigation. Our established industry partnerships bring a focus to our research work that enable sensors to be customised to the needs of each application. The total long term economic impact could amount to ~10% of GDP. Gravity sensors can see beneath the surface of the ground to identify buried structures that result in enormous cost to construction projects ranging from rail infrastructure, or sink holes, to brownfield site developments. Similarly they can identify oil resources and magma flows. To be of practical value, gravity sensors must be able to make rapid measurements in challenging environments. Operation from airborne platforms, such as drones, will greatly reduce the cost of deployment and bring inaccessible locations within reach. Mapping brain activity in patients with dementia or schizophrenia, particularly when they are able to move around and perform tasks which stimulate brain function, will help early diagnosis and speed the development of new treatments. Existing brain imaging systems are large and unwieldy; it is particularly difficult to use them with children where a better understanding of epilepsy or brain injury would be of enormous benefit. The systems we will develop will be used initially for patients moving freely in shielded rooms but will eventually be capable of operation in less specialised environments. A new generation of QT based magnetometers, manufactured in the UK, will enable these advances. Precision timing is essential to many systems that we take for granted, including communications and radar. Ultra-precise oscillators, in a field deployable package, will enable radar systems to identify small slow-moving targets such as drones which are currently difficult to detect, bringing greater safety to airports and other sensitive locations. Our world is highly dependent on precise navigation. Although originally developed for defence, our civil infrastructure is critically reliant on GNSS. The ability to fix one's location underground, underwater, inside buildings or when satellite signals are deliberately disrupted can be greatly enhanced using QT sensing. Making Inertial Navigation Systems more robust and using novel techniques such as gravity map matching will alleviate many of these problems. In order to achieve all this, we will drive advanced physics research aimed at small, low power operation and translate it into engineered packages to bring systems of unparalleled capability within the reach of practical applications. Applied research will bring out their ability to deliver huge societal and economic benefit. By continuing to work with a cohort of industry partners, we will help establish a complete ecosystem for QT exploitation, with global reach but firmly rooted in the UK. These goals can only be met by combining the expertise of scientists and engineers across a broad spectrum of capability. The ability to engineer devices that can be deployed in challenging environments requires contributions from physics electronic engineering and materials science. The design of systems that possess the necessary characteristics for specific applications requires understanding from civil and electronic engineering, neuroscience and a wide range of stakeholders in the supply chain. The outputs from a sensor is of little value without the ability to translate raw data into actionable information: data analysis and AI skills are needed here. The research activities of the hub are designed to connect and develop these skills in a coordinated fashion such that the impact on our economy is accelerated.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2014 - 2019Partners:Defence Science and Technology Laboratory, Versyns Ventures, Elekta Oy, Princeton University, AWE +151 partnersDefence Science and Technology Laboratory,Versyns Ventures,Elekta Oy,Princeton University,AWE,Macleod Simmonds Ltd,Kelvin Nanotechnology (United Kingdom),P&G Fabric & Home Care Product Design,GeoDynamics Worldwide Srl,Severn Trent (United Kingdom),Cardno TBE,Teledyne e2v (United Kingdom),IBM (United Kingdom),Rolls-Royce (United Kingdom),Aalto University,Knowledge Transfer Partnership,ARKeX,KNOWLEDGE TRANSFER NETWORK LIMITED,Micro-g LaCoste,South East Physics Network,Rutgers State University of New Jersey,Rutgers, The State University of New Jersey,Knowledge Transfer Partnership,Stratophase Ltd,Samsung Electronics,T2 Utility Engineers Inc,Sapienza University of Rome,University of Colorado Boulder,Utsi Electronics Ltd,Samsung Electronics,Macleod Simmonds Ltd,Vertex Pharmaceuticals Ltd,IBM Corporation (International),HUJ,Leonardo (United Kingdom),University of Trento,RU,NIST (Nat. Inst of Standards and Technol,JK Guest Group,MuquanS,Roma Tre University,Mechdyne Europe Ltd,Cardno (International),Samsung (United Kingdom),P&G Fabric & Home Care Product Design,Reid Geophysics,Institut National de la Recherche Scientifique,NPL,British Geological Survey,Micro-g LaCoste,Cardno TBE,TMD Technologies (United Kingdom),Quantum Wave Fund,GeoDynamics Worldwide Srl,SEVERN TRENT WATER,MBDA UK Ltd,HUJI,BAE Systems (UK),Texas A&M Transportation Institute,Drilline Products Ltd,Institution of Civil Engineers,Texas A&M Transportation Institute,Selex ES Ltd,Stanford University,Princeton University,ICE,UK Society for Trenchless Technolody,Chemring Technology Solutions (United Kingdom),Vertex Pharmaceuticals (United Kingdom),IBM UNITED KINGDOM LIMITED,MTC,ARKeX Limited,Network Rail,South East Physics Network,Quantum Wave Fund,Thales (International),University of Birmingham,Chemring Technology Solutions,City University of Hong Kong,IBM (United States),UCB,BP British Petroleum,URS Infrastructure & Environment UK Ltd,South East Physics Network,Qrometric Limited,URS Infrastructure & Environment UK Ltd,RSK Group plc,BAE Systems (United Kingdom),UK Society for Trenchless Technology,GEM Electronics,Utsi Electronics (United Kingdom),STFC - Laboratories,Hebrew University of Jerusalem,Rolls-Royce Plc (UK),NERC British Geological Survey,JK Guest Group,Chemring Technology Solutions,BALFOUR BEATTY RAIL,Balfour Beatty (United Kingdom),Subscan Technology,MBDA (United Kingdom),INRS - Institute Armand Frappier,IBM (United Kingdom),BP (United States),Defence Science & Tech Lab DSTL,Royal Institute of Navigation,National Physical Laboratory,Subscan Technology,URS Corporation (United Kingdom),Versyns Ventures,BAE Systems (Sweden),Knowledge Transfer Network,Qrometric Limited,KNT,Elekta Oy,Met Geo Environmental,Progetto Manifattura Srl,Aalto University,Thales (France),Mechadyne International,Met Geo Environmental,Science and Technology Facilities Council,Innovate UK,ASE,European Space Agency (UK),TMD,Cardno AUS,T2 Utility Engineers Inc,STFC - LABORATORIES,Drilline Products Ltd,Manufacturing Technology Centre (United Kingdom),BALFOUR BEATTY PLC,Texas A&M University,Infotec Consulting,Stanford University,RSK Group plc,Network Rail,Progetto Manifattura Srl,Rolls-Royce (United Kingdom),Reid Geophysics Ltd,IBM,Atomic Weapons Establishment,Infotec ( United Kingdom),e2v technologies plc,University of Birmingham,The Royal Institute of Navigation,INSTITUTION OF CIVIL ENGINEERS,Selex-ES Ltd,National Institute of Standards and Technology,Defence Science & Tech Lab DSTL,GEM Electronics,SU,Thales,University of Trento,Muquans (France),Stratascan LtdFunder: UK Research and Innovation Project Code: EP/M013294/1Funder Contribution: 35,513,900 GBPThe Hub will create a seamless link between science and applications by building on our established knowledge exchange activities in quantum technologies. We will transform science into technology by developing new products, demonstrating their applications and advantages, and establishing a strong user base in diverse sectors. Our overarching ambition is to deliver a wide range of quantum sensors to underpin many new commercial applications. Our key objective is to ensure that the Hub's outputs will have been picked up by companies, or industry-led TSB projects, by the end of the funding period. The Hub will comprise: a strong fabrication component; quantum scientists with a demonstrated ability to combine scientific excellence with technological delivery; leading engineers with the broad collective expertise and connections required to develop and use new quantum sensors. We have identified, and actively involved, industry enablers to build a supply chain for quantum sensor technology. As well as direct physics connections to industry, the engineers provide strong links to relevant industrial users, thus providing information on industrial needs and enabling rapid prototype deployment in the field. To establish a coherent national collaborative effort, the Hub will include a UK network on quantum sensors and metrology, which will also exploit the connections that Prof Bongs and all Hub members have forged in Europe, the US and Asia. This inter-linkage ensures capture of the most advanced developments in quantum technology around the world for exploitation by the UK. Quantum sensors and metrology, plus some devices in quantum communication, are the only areas where laboratory prototypes have already proven superior to their best classical counterparts. This sets the stage, credibly, for rapid and disruptive applications emerging from the Hub. The selection of prototypes will be driven by commercial pull, i.e. each prototype project within the Hub must demonstrate, from the outset, industry or practitioner engagement from our engineering and/or industrial collaborators. We have strong industry support across several disciplines with the structures in place actively to manage technology and knowledge transfer to the industry sector. Particular roles are played by NPL and e2V. We will closely collaborate with NPL as metrology end-user on clock, magnetometer and potentially Watt balance developments with a lecturer-level Birmingham-NPL fellow contributed by Birmingham University and our PRDAs spending ~17 man-years in addition to 3-5 PhD students on these joint projects in the Advanced Metrology Laboratory/incubator space. E2v have a unique industrial manufacturing/R&D facility co-located within the School of Physics and Astronomy at Nottingham that has already catalysed the expansion of their activities into the Quantum Technology domain. Public Engagement conveying the Hub's breakthroughs will be a high priority - for example annually at the Royal Society Summer Exhibitions. In addition to cohort-training of 80 PhD students working within the Hub, the Hub will contribute to the training of ~500 PhD students via electronically-shared lectures (many already running within the e-learning graduate schools MPAGS, MEGS, SEPNET and SUPA) across the institutions within the Hub. The Hub will create an internationally-leading centre of excellence with major impact in the area of quantum sensors and metrology. To widen the impact of the Hub and ensure long-term sustainability, we will actively pursue European and other international collaborative funding for both underlying fundamental research and the technology development.
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