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Träfflista för sökning "WFRF:(Alves L.) srt2:(2015-2019)"

Search: WFRF:(Alves L.) > (2015-2019)

  • Result 1-10 of 182
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1.
  • Aad, G, et al. (author)
  • 2015
  • swepub:Mat__t
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5.
  • 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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6.
  • 2018
  • In: Nuclear Fusion. - : IOP Publishing. - 1741-4326 .- 0029-5515. ; 58:1
  • Research review (peer-reviewed)
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7.
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8.
  • 2018
  • In: Nuclear Fusion. - : IOP Publishing. - 1741-4326 .- 0029-5515. ; 58:9
  • Journal article (peer-reviewed)
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9.
  • Adam, J., et al. (author)
  • Precision measurement of the mass difference between light nuclei and anti-nuclei
  • 2015
  • In: Nature Physics. - 1745-2473. ; 11:10, s. 120-811
  • Journal article (peer-reviewed)abstract
    • The measurement of the mass differences for systems bound by the strong force has reached a very high precision with protons and anti-protons(1,2). The extension of such measurement from (anti-)baryons to (anti-) nuclei allows one to probe any difference in the interactions between nucleons and anti-nucleons encoded in the (anti-) nuclei masses. This force is a remnant of the underlying strong interaction among quarks and gluons and can be described by effective theories(3), but cannot yet be directly derived from quantum chromodynamics. Here we report a measurement of the difference between the ratios of the mass and charge of deuterons (d) and anti-deuterons ((d) over bar), and He-3 and (3)(He) over bar nuclei carried out with the ALICE (A Large Ion Collider Experiment)(4) detector in Pb-Pb collisions at a centre-of-mass energy per nucleon pair of 2.76 TeV. Our direct measurement of the mass-over-charge differences confirms CPT invariance to an unprecedented precision in the sector of light nuclei(5,6). This fundamental symmetry of nature, which exchanges particles with anti-particles, implies that all physics laws are the same under the simultaneous reversal of charge(s) (charge conjugation C), reflection of spatial coordinates (parity transformation P) and time inversion (T).
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10.
  • 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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  • Result 1-10 of 182
Type of publication
journal article (161)
conference paper (15)
research review (5)
Type of content
peer-reviewed (176)
other academic/artistic (5)
Author/Editor
Lee, S (43)
Bianchi, L. (39)
Molnar, L. (39)
van Leeuwen, M. (37)
Zhou, Y. (32)
Zhang, H. (31)
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Zhang, Y. (31)
Das, S. (30)
Kim, D. W. (30)
Kim, S. (30)
Wang, M. (30)
Price, D. (29)
Walker, R. (29)
Gupta, A. (29)
Vasileiou, M. (29)
Kim, T. (29)
Zhao, C. (29)
Williams, M (29)
Ariola, M (29)
Baciero, A (29)
Ferreira, J (29)
Jones, G. (28)
Li, S. (28)
Zhang, X. (28)
Weber, M. (28)
Gupta, R. (28)
Kowalski, M. (28)
Mas, A. (28)
Garcia, J. (28)
Zhang, W. (28)
Silva, C. (28)
Duran, I (28)
Wang, N. (28)
Bilkova, P (28)
Bolzonella, T (28)
Brezinsek, S (28)
Buratti, P (28)
Carvalho, P (28)
Cavazzana, R (28)
Chernyshova, M (28)
Coelho, R (28)
Crisanti, F (28)
Cruz, N (28)
Cseh, G (28)
Czarnecka, A (28)
Frigione, D (28)
Giacomelli, L (28)
Giovannozzi, E (28)
Horacek, J (28)
Huber, A (28)
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University
Uppsala University (69)
Lund University (57)
Karolinska Institutet (49)
Chalmers University of Technology (40)
Royal Institute of Technology (29)
University of Gothenburg (18)
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Umeå University (16)
Stockholm University (16)
Högskolan Dalarna (9)
Luleå University of Technology (8)
Mid Sweden University (7)
Blekinge Institute of Technology (6)
Linköping University (5)
Swedish University of Agricultural Sciences (3)
Södertörn University (2)
Karlstad University (2)
Swedish Museum of Natural History (2)
Örebro University (1)
Stockholm School of Economics (1)
Linnaeus University (1)
RISE (1)
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Language
English (182)
Research subject (UKÄ/SCB)
Natural sciences (120)
Medical and Health Sciences (35)
Engineering and Technology (31)
Social Sciences (5)
Agricultural Sciences (2)

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