Observation of Hydrodynamic Flows in Imploding Fusion Plasmas on the National Ignition Facility
Harvard Dataverse (Africa Rice Center, Bioversity International, CCAFS, CIAT, IFPRI, IRRI and WorldFish)
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Title |
Observation of Hydrodynamic Flows in Imploding Fusion Plasmas on the National Ignition Facility
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Identifier |
https://doi.org/10.7910/DVN/QETYNQ
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Creator |
D.J. Schlossberg, G.P. Grim, D.T. Casey, A.S. Moore, R. Nora, B. Bachmann, L.R. Benedetti, R.M. Bionta, M.J. Eckart, J.E. Field, D.N. Fittinghoff, M. Gatu Johnson, V. Geppert-Kleinrath, E.P. Hartouni, R. Hatarik, W.W. Hsing, L.C. Jarrott, S.F. Khan, J.D. Kilkenny, O.L. Landen, B.J. MacGowan, A.J. Mackinnon, K.D. Meaney, D.H. Munro, S.R. Nagel, A. Pak, P.K. Patel, B.K. Spears, P.L. Volegov, C.V. Young
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Publisher |
Harvard Dataverse
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Description |
Inertial confinement fusion implosions designed to have minimal fluid motion at peak compression often show significant linear flows in the laboratory, attributable per simulations to percent-level imbalances in the laser drive illumination symmetry. We present experimental results which intentionally varied the Mode 1 drive imbalance by up to 4% to test hydrodynamic predictions of flows and the resultant imploded core asymmetries and performance, as measured by a combination of DT neutron spectroscopy and high-resolution x-ray core imaging. Neutron yields decrease by up to 50% and anisotropic neutron Doppler broadening increases by 20%, in agreement with simulations. Furthermore, a tracer jet from the capsule fill tube perturbation that is entrained by the hot spot flow confirms the average flow speeds deduced from neutron spectroscopy.
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Subject |
Physics
hydrodynamic flow indirect-drive inertial confinement fusion neutron spectrometry x-ray imaging |
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