SINAPSE
SINAPSE
3 Projects, page 1 of 1
assignment_turned_in Project2012 - 2016Partners:The University of Texas at Austin, GIST, SINAPSE, University of Strathclyde, IUPUI +20 partnersThe University of Texas at Austin,GIST,SINAPSE,University of Strathclyde,IUPUI,IUSM,Cockcroft Institute,Max-Planck-Gymnasium,STFC - LABORATORIES,Technical University of Lisbon,Ulsan Nat Inst of Sci and Tech UNIST,Technical University of Lisbon,University of Strathclyde,UNIST,SJTU,Max Planck Institutes,NNL,STFC - Laboratories,Science and Technology Facilities Council,Cockcroft Institute,National Nuclear Laboratory (NNL),Ludwig Maximilian University of Munich,Gwangju Institute of Science & Technolog,SINAPSE,LMUFunder: UK Research and Innovation Project Code: EP/J018171/1Funder Contribution: 3,147,630 GBPThis proposal describes a programme of research on single-particle and collective radiation-beam-plasma interactions at high field intensities, production of high-brightness particle beams with femtosecond to attosecond duration, new sources of coherent and incoherent radiation that are both compact and inexpensive, new methods of accelerating particles which could make them widely available and, by extending their parameter range, stimulate new application areas. An important adjunct to the proposal will be a programme to apply the sources to demonstrate their usefulness and also provide a way to involve industry and other end-users. The project builds on previous experiments and theoretical investigations of the Advanced Laser Plasma High-energy Accelerators towards X-rays (ALPHA-X) project, which has demonstrated controlled acceleration in a laser-plasma wakefield accelerator (LWFA), initial applications of beams from the LWFA and demonstrations of gamma ray production due to resonant betatron motion in the LWFA. The programme will have broad relevance, through developing an understanding of the highly nonlinear and collective physics of radiation-matter interactions, to fields ranging from astrophysics, fusion and nuclear physics, to the interaction of radiation with biological matter. It will also touch on several basic problems in physics, such as radiation reaction in plasma media and the development of coherence in nonlinear coupled systems.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2016 - 2021Partners:The University of Texas at Austin, University of Edinburgh, Technical University of Lisbon, Extreme Light Infrastructure Beamlines, TU Darmstadt +30 partnersThe University of Texas at Austin,University of Edinburgh,Technical University of Lisbon,Extreme Light Infrastructure Beamlines,TU Darmstadt,SINAPSE,STFC - LABORATORIES,NPL,University of Strathclyde,ELI HU Nonprofit Kft az,STFC - Laboratories,Science and Technology Facilities Council,University of Castilla-La Mancha,ELI-NP (Extreme Lifht Infrastructure),Chalmers University of Technology,Higher Technical Institute (IST),Extreme Light Infrastructure - Nuclear Physics,Tsinghua University,ELI HU Nonprofit Kft az,Ulsan Nat Inst of Sci and Tech UNIST,SINAPSE,Tsinghua University,National Physical Laboratory,University of Strathclyde,FSU,eli beamlines,University of Southampton,Cockcroft Institute,University of Salamanca,Technical University of Darmstadt,University of Southampton,UNIST,Chalmers University of Technology,UCLM,Cockcroft InstituteFunder: UK Research and Innovation Project Code: EP/N028694/1Funder Contribution: 4,494,680 GBPThe lab in a bubble project is a timely investigation of the interaction of charged particles with radiation inside and in the vicinity of relativistic plasma bubbles created by intense ultra-short laser pulses propagating in plasma. It builds on recent studies carried out by the ALPHA-X team of coherent X-ray radiation from the laser-plasma wakefield accelerator and high field effects where radiation reaction becomes important. The experimental programme will be carried out using high power lasers and investigate new areas of physics where single-particle and collective radiation reaction and quantum effects become important, and where non-linear coupling and instabilities between beams, laser, plasma and induced fields develop, which result in radiation and particle beams with unique properties. Laser-plasma interactions are central to all problems studied and understanding their complex and often highly non-linear interactions gives a way of controlling the bubble and beams therein. To investigate the rich range of physical processes, advanced theoretical and experimental methods will be applied and advantage will be taken of know-how and techniques developed by the teams. New analytical and numerical methods will be developed to enable planning and interpreting results from experiments. Advanced experimental methods and diagnostics will be developed to probe the bubble and characterise the beams and radiation. An important objective will be to apply the radiation and beams in selected proof-of-concept applications to the benefit of society. The project is involves a large group of Collaborators and Partners, who will contribute to both theoretical and experimental work. The diverse programme is managed through a synergistic approach where there is strong linkage between work-packages, and both theoretical and experiential methodologies are applied bilaterally: experiments are informed by theory at planning and data interpretation stages, and theory is steered by the outcome of experimental studies, which results in a virtuous circle that advances understanding of the physics inside and outside the lab in a bubble. We also expect to make major advances in high field physics and the development of a new generation of compact coherent X-ray sources.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2019 - 2027Partners:University of Glasgow, Sound & Bright, CTS Corporation, Honeywell UK, SINAPSE +72 partnersUniversity of Glasgow,Sound & Bright,CTS Corporation,Honeywell UK,SINAPSE,NHS Greater Glasgow and Clyde,Iamus,Knowles,Thales (United Kingdom),Aseptium Ltd,Novosound,Mackie Automatic & Manual Transmissions,Canon Medical Research Europe Ltd,Polytec Ltd (UK),Precision Acoustics (United Kingdom),Pressure Profile Systems (United States),Acoustiic,Novosound Ltd,TÜV SÜD (United Kingdom),Honeywell UK,Thales Group (UK),Acoustiic,Canon Medical Research Europe Ltd,Ultrahaptics (United Kingdom),Ionix Advanced Technologies (United Kingdom),Weir Group PLC,Turner Iceni,Mackie Automatic & Manual Transmissions,Ultrahaptics Ltd,Dolfi Sonic International Ltd,NERC BRITISH ANTARCTIC SURVEY,NHS GREATER GLASGOW AND CLYDE,Meggitt PLC,IMV Imaging,Ionix Advanced Technologies Ltd,Stryker (International),NPL,Envision Design Ltd,PPS,Iamus,NHS Greater Glasgow and Clyde,SINAPSE,TUV NEL Ltd,Hemideina,Knowles,Innovation Centre for Sensor and Imaging Systems,OnScale (International),British Antarctic Survey,Doosan Power Systems,OnScale (International),Turner Iceni,Meggitt PLC,Polytec Ltd,CTS Corporation,NERC British Antarctic Survey,Precision Acoustics (United Kingdom),University of Glasgow,CENSIS,Envision Design Ltd,IMV Imaging,Hemideina,Stryker (United States),Aseptium Ltd,Doosan Babcock Power Systems,Thales Group,WEIR GROUP,Active Needle Technology Ltd,Knowles (United States),Verasonics Inc,TUV NEL Ltd,Doosan (United Kingdom),Stryker Europe,National Physical Laboratory,Sound & Bright,Verasonics Inc,Dolfi Sonic International Ltd,Active Needle Technology LtdFunder: UK Research and Innovation Project Code: EP/S023879/1Funder Contribution: 6,336,920 GBPUltrasonics, the science and technology of sound at frequencies above the audible range, has a huge range of applications in sensing and remote delivery of energy. In sensing, 20% of medical scans rely on ultrasonics for increasingly diverse procedures. Ultrasonics is pervasive in underwater sensing and communication and a key technology for non-destructive evaluation. Ultrasonic devices are essential components in every mobile phone and are being developed for enhanced biometric security. Ultrasound is also important in remote delivery of energy. In medical therapy, it is used to treat neural dysfunction and cancer. Many surgical tools are actuated with ultrasound. As the best way to clean surfaces and bond interconnects, ultrasound is pervasive in semiconductor and electronics fabrication; it is also being explored for power delivery to implants and to give a contactless sense of touch. Such a broad range of applications predicts an exciting future: new materials will emerge into applications; semiconductor circuits will deliver smaller, more convenient instrumentation systems; autonomy and robotics will call for better sensors; and data analysis will benefit from machine learning. To maintain competitive advantage in this dynamic and multidisciplinary topic, companies worldwide rely on ambitious, innovative engineers to provide their unique knowledge of ultrasonics. As a significant contribution to address this need, Medical & Industrial Ultrasonics at the University of Glasgow and the Centre for Ultrasonic Engineering at the University of Strathclyde will combine to form the Centre for Doctoral Training in Future Ultrasonic Engineering (FUSE), the largest academic ultrasonic engineering unit in the world. Working with more than 30 external organisations, from microcompanies to multinationals, this will, for the first time, enable systematic training of a new generation of leaders in ultrasonics research, engineering and product development. This training will take place in the world-class research environment provided by two of the UK's pre-eminent universities with its partners, creating a training and research powerhouse in ultrasonics that will attract the best students and put them at the global forefront of the field.
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