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Träfflista för sökning "WFRF:(Michael S) "

Search: WFRF:(Michael S)

  • Result 1-50 of 3971
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1.
  • Kanai, M, et al. (author)
  • 2023
  • swepub:Mat__t
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2.
  • Niemi, MEK, et al. (author)
  • 2021
  • swepub:Mat__t
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3.
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4.
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5.
  • Aad, G., et al. (author)
  • 2015
  • Journal article (peer-reviewed)
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6.
  • Aad, G., et al. (author)
  • 2015
  • Journal article (peer-reviewed)
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7.
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8.
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9.
  • Aad, G., et al. (author)
  • 2015
  • In: The European Physical Journal C. - : Springer Science and Business Media LLC. - 1434-6052. ; 75:7
  • Journal article (peer-reviewed)
  •  
10.
  • Aad, G., et al. (author)
  • 2015
  • In: The European Physical Journal C. - : Springer Science and Business Media LLC. - 1434-6052. ; 75:7
  • Journal article (peer-reviewed)
  •  
11.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - : American Physical Society. - 1079-7114 .- 0031-9007. ; 114:23
  • Journal article (peer-reviewed)
  •  
12.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - : American Physical Society. - 1079-7114 .- 0031-9007. ; 114:22
  • Journal article (peer-reviewed)
  •  
13.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - 1079-7114 .- 0031-9007. ; 115:9
  • Journal article (peer-reviewed)
  •  
14.
  • Aad, G., et al. (author)
  • 2015
  • In: Journal of High Energy Physics. - : Societa Italiana di Fisica. - 1029-8479 .- 1126-6708. ; :8
  • Journal article (peer-reviewed)
  •  
15.
  • Aad, G., et al. (author)
  • 2015
  • In: Journal of High Energy Physics. - : Societa Italiana di Fisica. - 1029-8479 .- 1126-6708. ; :9
  • Journal article (peer-reviewed)
  •  
16.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review D (Particles, Fields, Gravitation and Cosmology). - 1550-2368 .- 1550-7998. ; 92:9
  • Journal article (peer-reviewed)
  •  
17.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - 1079-7114 .- 0031-9007. ; 115:13
  • Journal article (peer-reviewed)
  •  
18.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - 1079-7114 .- 0031-9007. ; 115:3
  • Journal article (peer-reviewed)
  •  
19.
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20.
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21.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review C (Nuclear Physics). - 0556-2813 .- 1089-490X. ; 92:3
  • Journal article (peer-reviewed)
  •  
22.
  • Aad, G., et al. (author)
  • 2015
  • Journal article (peer-reviewed)
  •  
23.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review D (Particles, Fields, Gravitation and Cosmology). - 1550-2368 .- 1550-7998. ; 92:1
  • Journal article (peer-reviewed)
  •  
24.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review Letters. - 1079-7114 .- 0031-9007. ; 115:3
  • Journal article (peer-reviewed)
  •  
25.
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26.
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27.
  • Aad, G., et al. (author)
  • 2015
  • Journal article (peer-reviewed)
  •  
28.
  • Aad, G., et al. (author)
  • 2015
  • In: The European Physical Journal C. - : Springer Science and Business Media LLC. - 1434-6052. ; 75:9
  • Journal article (peer-reviewed)
  •  
29.
  • Aad, G., et al. (author)
  • 2015
  • In: Physical Review D (Particles, Fields, Gravitation and Cosmology). - 1550-2368 .- 1550-7998. ; 91:11, s. 112011-
  • Journal article (peer-reviewed)
  •  
30.
  • Aad, G., et al. (author)
  • 2015
  • In: Journal of High Energy Physics. - : Springer. - 1029-8479 .- 1126-6708. ; :12
  • Journal article (peer-reviewed)
  •  
31.
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32.
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33.
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34.
  • Aad, G., et al. (author)
  • 2015
  • In: Journal of High Energy Physics. - : Springer-Verlag New York. - 1029-8479 .- 1126-6708. ; :9
  • Journal article (peer-reviewed)
  •  
35.
  • Aad, G., et al. (author)
  • 2015
  • In: Journal of High Energy Physics. - 1029-8479 .- 1126-6708. ; :8
  • Journal article (peer-reviewed)
  •  
36.
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37.
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38.
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39.
  • 2021
  • swepub:Mat__t
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40.
  • 2017
  • In: Physical Review D. - 2470-0010 .- 2470-0029. ; 96:2
  • Journal article (peer-reviewed)
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41.
  • Murari, A., et al. (author)
  • A control oriented strategy of disruption prediction to avoid the configuration collapse of tokamak reactors
  • 2024
  • In: Nature Communications. - 2041-1723 .- 2041-1723. ; 15:1
  • Journal article (peer-reviewed)abstract
    • The objective of thermonuclear fusion consists of producing electricity from the coalescence of light nuclei in high temperature plasmas. The most promising route to fusion envisages the confinement of such plasmas with magnetic fields, whose most studied configuration is the tokamak. Disruptions are catastrophic collapses affecting all tokamak devices and one of the main potential showstoppers on the route to a commercial reactor. In this work we report how, deploying innovative analysis methods on thousands of JET experiments covering the isotopic compositions from hydrogen to full tritium and including the major D-T campaign, the nature of the various forms of collapse is investigated in all phases of the discharges. An original approach to proximity detection has been developed, which allows determining both the probability of and the time interval remaining before an incoming disruption, with adaptive, from scratch, real time compatible techniques. The results indicate that physics based prediction and control tools can be developed, to deploy realistic strategies of disruption avoidance and prevention, meeting the requirements of the next generation of devices.
  •  
42.
  • Joffrin, E., et al. (author)
  • Overview of the JET preparation for deuterium-tritium operation with the ITER like-wall
  • 2019
  • In: Nuclear Fusion. - : IOP Publishing. - 1741-4326 .- 0029-5515. ; 59:11
  • Research review (peer-reviewed)abstract
    • For the past several years, the JET scientific programme (Pamela et al 2007 Fusion Eng. Des. 82 590) has been engaged in a multi-campaign effort, including experiments in D, H and T, leading up to 2020 and the first experiments with 50%/50% D-T mixtures since 1997 and the first ever D-T plasmas with the ITER mix of plasma-facing component materials. For this purpose, a concerted physics and technology programme was launched with a view to prepare the D-T campaign (DTE2). This paper addresses the key elements developed by the JET programme directly contributing to the D-T preparation. This intense preparation includes the review of the physics basis for the D-T operational scenarios, including the fusion power predictions through first principle and integrated modelling, and the impact of isotopes in the operation and physics of D-T plasmas (thermal and particle transport, high confinement mode (H-mode) access, Be and W erosion, fuel recovery, etc). This effort also requires improving several aspects of plasma operation for DTE2, such as real time control schemes, heat load control, disruption avoidance and a mitigation system (including the installation of a new shattered pellet injector), novel ion cyclotron resonance heating schemes (such as the three-ions scheme), new diagnostics (neutron camera and spectrometer, active Alfven eigenmode antennas, neutral gauges, radiation hard imaging systems...) and the calibration of the JET neutron diagnostics at 14 MeV for accurate fusion power measurement. The active preparation of JET for the 2020 D-T campaign provides an incomparable source of information and a basis for the future D-T operation of ITER, and it is also foreseen that a large number of key physics issues will be addressed in support of burning plasmas.
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43.
  • Bombarda, F., et al. (author)
  • Runaway electron beam control
  • 2019
  • In: Plasma Physics and Controlled Fusion. - : IOP Publishing. - 1361-6587 .- 0741-3335. ; 61:1
  • Journal article (peer-reviewed)
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44.
  • 2018
  • In: Nuclear Fusion. - : IOP Publishing. - 1741-4326 .- 0029-5515. ; 58:1
  • Research review (peer-reviewed)
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45.
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46.
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47.
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48.
  • 2018
  • In: Nuclear Fusion. - : IOP Publishing. - 1741-4326 .- 0029-5515. ; 58:9
  • Journal article (peer-reviewed)
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49.
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50.
  • Acharya, B. S., et al. (author)
  • Introducing the CTA concept
  • 2013
  • In: Astroparticle physics. - : Elsevier BV. - 0927-6505 .- 1873-2852. ; 43, s. 3-18
  • Journal article (other academic/artistic)abstract
    • The Cherenkov Telescope Array (CTA) is a new observatory for very high-energy (VHE) gamma rays. CTA has ambitions science goals, for which it is necessary to achieve full-sky coverage, to improve the sensitivity by about an order of magnitude, to span about four decades of energy, from a few tens of GeV to above 100 TeV with enhanced angular and energy resolutions over existing VHE gamma-ray observatories. An international collaboration has formed with more than 1000 members from 27 countries in Europe, Asia, Africa and North and South America. In 2010 the CTA Consortium completed a Design Study and started a three-year Preparatory Phase which leads to production readiness of CTA in 2014. In this paper we introduce the science goals and the concept of CTA, and provide an overview of the project. (C) 2013 Elsevier B.V. All rights reserved.
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  • Result 1-50 of 3971
Type of publication
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peer-reviewed (3747)
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Lohse, T. (160)
White, R. (153)
Fegan, S. (152)
Becherini, Yvonne (142)
Punch, Michael (130)
Kluzniak, W. (127)
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Fontaine, G. (126)
Khelifi, B. (126)
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de Naurois, M. (125)
Reimer, O. (125)
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Moulin, E. (124)
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Katz, U. (123)
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