• Matter and Radiation at Extremes
  • Vol. 8, Issue 4, 046903 (2023)
R. Rossi1, M. Gelfusa1,a), T. Craciunescu2, L. Spolladore1..., I. Wyss1, E. Peluso1, J. Vega3, C. F. Maggi4, J. Mailloux4, M. Maslov4, A. Murari5,6 and 7|Show fewer author(s)
Author Affiliations
  • 1Department of Industrial Engineering, University of Rome “Tor Vergata,” via del Politecnico 1, Roma, Italy
  • 2National Institute for Laser, Plasma and Radiation Physics, Magurele-Bucharest, Romania
  • 3Laboratorio Nacional de Fusión, CIEMAT, Av. Complutense 40, 28040 Madrid, Spain
  • 4UKAEA-CCFE, Culham Science Centre, Abingdon OX14 3DB, United Kingdom
  • 5Consorzio RFX (CNR, ENEA, INFN, Università di Padova, Acciaierie Venete SpA), Corso Stati Uniti 4, 35127 Padova, Italy
  • 6Istituto per la Scienza e la Tecnologia dei Plasmi, CNR, Padova, Italy
  • 7EUROfusion Consortium, JET, Culham Science Centre, Abingdon OX14 3DB, United Kingdom
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    DOI: 10.1063/5.0143193 Cite this Article
    R. Rossi, M. Gelfusa, T. Craciunescu, L. Spolladore, I. Wyss, E. Peluso, J. Vega, C. F. Maggi, J. Mailloux, M. Maslov, A. Murari, [in Chinese]. A systematic investigation of radiation collapse for disruption avoidance and prevention on JET tokamak[J]. Matter and Radiation at Extremes, 2023, 8(4): 046903 Copy Citation Text show less

    Abstract

    To produce fusion reactions efficiently, thermonuclear plasmas have to reach extremely high temperatures, which is incompatible with their coming into contact with material surfaces. Confinement of plasmas using magnetic fields has progressed significantly in the last years, particularly in the tokamak configuration. Unfortunately, all tokamak devices, and particularly metallic ones, are plagued by catastrophic events called disruptions. Many disruptions are preceded by anomalies in the radiation patterns, particularly in ITER-relevant scenarios. These specific forms of radiation emission either directly cause or reveal the approaching collapse of the configuration. Detecting the localization of these radiation anomalies in real time requires an innovative and specific elaboration of bolometric measurements, confirmed by visible cameras and the inversion of sophisticated tomographic algorithms. The information derived from these measurements can be interpreted in terms of local power balances, which suggest a new quantity, the radiated power divided by the plasma internal energy, to determine the criticality of the plasma state. Combined with robust indicators of the temperature profile shape, the identified anomalous radiation patterns allow determination of the sequence of macroscopic events leading to disruptions. A systematic analysis of JET campaigns at high power in deuterium, full tritium, and DT, for a total of almost 2000 discharges, proves the effectiveness of the approach. The warning times are such that, depending on the radiation anomaly and the available actuators, the control system of future devices is expected to provide enough notice to enable deployment of effective prevention and avoidance strategies.
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    PH1=RdivFdiv,H1+RLFBFLFB,H1PH2=RHFLFHFL,H2+RcoreFcore,H2+RLFRFLFR,H2PH3=RHFTFHFT,H3+RtopFtop,H3+RLFTFLFT,H3PV1=RLFBFLFB,V1+RLFRFLFR,V1+RLFTFLFT,V1PV2=RdivFdiv,V2+RcoreFcore,V2+RTopFTop,V2PV3=RHFTFHFT,V3+RHFLFHFL,V3

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    gm=nHmnfn.

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    fnk+1=fnkmHmnmgm/jHmjfjkHmn.

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    DB=14log14σ12σ22+σ22σ12+2+14μ1μ22σ12+σ22.

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    pD,EpcPrth=10PrthpdfD,EpPraddPrad,

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    Λid=DEp,jΛiEp,jDEp,j.

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    Λn,i=1ΛidPrad,iEp.

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    R. Rossi, M. Gelfusa, T. Craciunescu, L. Spolladore, I. Wyss, E. Peluso, J. Vega, C. F. Maggi, J. Mailloux, M. Maslov, A. Murari, [in Chinese]. A systematic investigation of radiation collapse for disruption avoidance and prevention on JET tokamak[J]. Matter and Radiation at Extremes, 2023, 8(4): 046903
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