Deceleration-stage Rayleigh-Taylor growth in a background magnetic field studied in cylindrical and Cartesian geometries

dc.contributor.authorSamulski, C.en
dc.contributor.authorSrinivasan, B.en
dc.contributor.authorManuel, M. J. E.en
dc.contributor.authorMasti, R.en
dc.contributor.authorSauppe, J. P.en
dc.contributor.authorKline, J.en
dc.date.accessioned2022-07-20T12:33:34Zen
dc.date.available2022-07-20T12:33:34Zen
dc.date.issued2022-03-01en
dc.description.abstractExperiments have identified the Rayleigh-Taylor (RT) instability as one of the greatest obstacles to achieving inertial confinement fusion. Consequently, mitigation strategies to reduce RT growth and fuel-ablator mixing in the hotspot during the deceleration phase of the implosion are of great interest. In this work, the effect of seed magnetic fields on deceleration-phase RT growth are studied in planar and cylindrical geometries under conditions relevant to the National Ignition Facility (NIF) and Omega experiments. The magnetohydrodynamic (MHD) and resistive-MHD capabilities of the FLASH code are used to model imploding cylinders and planar blast-wave-driven targets. Realistic target and laser parameters are presented that suggest the occurrence of morphological differences in late-time RT evolution in the cylindrical NIF case and a measurable difference in spike height of single-mode growth in the planar NIF case. The results of this study indicate the need for target designs to utilize an RT-unstable foam-foam interface in order to achieve sufficient magnetic field amplification to alter RT evolution. Benchmarked FLASH simulations are used to study these magnetic field effects in both resistive and ideal MHD. (c) 2022 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).en
dc.description.notesThis work was supported by the Office of Science of the U.S. Department of Energy under Award Nos. DE-SC0018993, DE-SC0016515, and DE-SC0022319 by the High Energy Density Laboratory Plasmas subprogram of the Fusion Energy Sciences program and under Award No. DE-SC0020055 by the Financial Assistance Program. This work was also supported through a Los Alamos National Laboratory subcontract to Virginia Tech under Contract No. 463281. The authors would like to acknowledge Advanced Research Computing at Virginia Tech for providing computational resources and technical support, and the FLASH Center for Computational Science for their constant feedback and access to the FLASH code developed by the DOE NNSA-ASC OASCR Flash Center at the University of Rochester.en
dc.description.sponsorshipOffice of Science of the U.S. Department of Energy [DE-SC0018993, DE-SC0016515, DE-SC0022319]; High Energy Density Laboratory Plasmas subprogram of the Fusion Energy Sciences program [DE-SC0020055]; Financial Assistance Program; Los Alamos National Laboratory subcontract to Virginia Tech [463281]en
dc.description.versionPublished versionen
dc.format.mimetypeapplication/pdfen
dc.identifier.doihttps://doi.org/10.1063/5.0062168en
dc.identifier.eissn2468-080Xen
dc.identifier.issn2468-2047en
dc.identifier.issue2en
dc.identifier.other26902en
dc.identifier.urihttp://hdl.handle.net/10919/111303en
dc.identifier.volume7en
dc.language.isoenen
dc.publisherAip Publishingen
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en
dc.subjectimplosion experimentsen
dc.subjectinstabilityen
dc.subjectignitionen
dc.subjectdesignen
dc.subjectflashen
dc.titleDeceleration-stage Rayleigh-Taylor growth in a background magnetic field studied in cylindrical and Cartesian geometriesen
dc.title.serialMatter and Radiation at Extremesen
dc.typeArticle - Refereeden
dc.type.dcmitypeTexten

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