• español
  • English
  • français
  • Deutsch
  • português (Brasil)
  • italiano
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Navegar

    Todo o repositórioComunidadesPor data do documentoAutoresAssuntosTítulos

    Minha conta

    Entrar

    Estatística

    Ver as estatísticas de uso

    Compartir

    Ver item 
    •   Página inicial
    • PRODUÇÃO CIENTÍFICA
    • Departamentos
    • Dpto. Física Teórica, Atómica y Óptica
    • DEP33 - Artículos de revista
    • Ver item
    •   Página inicial
    • PRODUÇÃO CIENTÍFICA
    • Departamentos
    • Dpto. Física Teórica, Atómica y Óptica
    • DEP33 - Artículos de revista
    • Ver item
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano

    Exportar

    RISMendeleyRefworksZotero
    • edm
    • marc
    • xoai
    • qdc
    • ore
    • ese
    • dim
    • uketd_dc
    • oai_dc
    • etdms
    • rdf
    • mods
    • mets
    • didl
    • premis

    Citas

    Por favor, use este identificador para citar o enlazar este ítem:https://uvadoc.uva.es/handle/10324/64390

    Título
    Cylindrical implosion platform for the study of highly magnetized plasmas at Laser MegaJoule
    Autor
    Vlachos, C.
    Walsh, C. A.
    Florido, R.
    Bailly-Grandvaux, M.
    Vaisseau, X.
    Suzuki-Vidal, F.
    McGuffey, C.
    Beg, F. N.
    Bradford, P.
    Ospina-Bohórquez, V.
    Batani, D.
    Raffestin, D.
    Colaïtis, A.
    Tikhonchuk, V.
    Casner, A.
    Koenig, M.
    Albertazzi, B.
    Fedosejevs, R.
    Woolsey, N.
    Ehret, M.
    Debayle, A.
    Loiseau, P.
    Calisti, A.
    Ferri, S.
    Honrubia, J.
    Kingham, R.
    Mancini, R. C.
    Santos, J. J.
    Pérez Callejo, GabrielAutoridad UVA Orcid
    Gigosos Pérez, Marco AntonioAutoridad UVA Orcid
    Año del Documento
    2022
    Editorial
    American Physical Society
    Descripción
    Producción Científica
    Documento Fuente
    Physical Review E, September 2022, vol. 106, p. 035206
    Resumo
    Investigating the potential benefits of the use of magnetic fields in inertial confinement fusion experiments has given rise to experimental platforms like the Magnetized Liner Inertial Fusion approach at the Z-machine (Sandia National Laboratories) or its laser-driven equivalent at OMEGA (Laboratory for Laser Energetics). Implementing these platforms at MegaJoule-scale laser facilities, such as the Laser MegaJoule (LMJ) or the National Ignition Facility (NIF), is crucial to reaching self-sustained nuclear fusion and enlarges the level of magnetization that can be achieved through a higher compression. In this paper, we present a complete design of an experimental platform for magnetized implosions using cylindrical targets at LMJ. A seed magnetic field is generated along the axis of the cylinder using laser-driven coil targets, minimizing debris and increasing diagnostic access compared with pulsed power field generators. We present a comprehensive simulation study of the initial B field generated with these coil targets, as well as two-dimensional extended magnetohydrodynamics simulations showing that a 5 T initial B field is compressed up to 25 kT during the implosion. Under these circumstances, the electrons become magnetized, which severely modifies the plasma conditions at stagnation. In particular, in the hot spot the electron temperature is increased (from 1 keV to 5 keV) while the density is reduced (from 40 g/cm3 to 7 g/cm3). We discuss how these changes can be diagnosed using x-ray imaging and spectroscopy, and particle diagnostics. We propose the simultaneous use of two dopants in the fuel (Ar and Kr) to act as spectroscopic tracers. We show that this introduces an effective spatial resolution in the plasma which permits an unambiguous observation of the B-field effects. Additionally, we present a plan for future experiments of this kind at LMJ.
    ISSN
    2470-0045
    Revisión por pares
    SI
    DOI
    10.1103/PhysRevE.106.035206
    Patrocinador
    Este trabajo forma parte del proyecto de investigación PID2019-108764RB-I00 del Ministerio de Ciencia e Innovación y de la Research Grant No. CEI2020-FEI02 de la Consejería de Economía, Industria, Comercio y Conocimiento del Gobierno de Canarias
    Idioma
    eng
    URI
    https://uvadoc.uva.es/handle/10324/64390
    Tipo de versión
    info:eu-repo/semantics/publishedVersion
    Derechos
    openAccess
    Aparece en las colecciones
    • DEP33 - Artículos de revista [197]
    Mostrar registro completo
    Arquivos deste item
    Nombre:
    PerezCallejo_PRE_2022.pdf
    Tamaño:
    7.275Mb
    Formato:
    Adobe PDF
    Thumbnail
    Visualizar/Abrir
    Atribución 4.0 InternacionalExceto quando indicado o contrário, a licença deste item é descrito como Atribución 4.0 Internacional

    Universidad de Valladolid

    Powered by MIT's. DSpace software, Version 5.10