Implosion shape control of high-velocity, large case-to-capsule ratio beryllium ablators at the National Ignition Facility

Experiments at the National Ignition Facility (NIF) show that the implosion shape of inertial confinement fusion ablators is a key factor limiting performance. To achieve more predictable, shape tunable implosions, we have designed and fielded a large 4.2 case-to-capsule ratio target at the NIF usin...

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Veröffentlicht in:Physics of plasmas 2018-07, Vol.25 (7)
Hauptverfasser: Loomis, E. N., Yi, S. A., Kyrala, G. A., Kline, J., Simakov, A., Ralph, J., Millot, M., Dewald, E., Zylstra, A., Rygg, J. R., Celliers, P., Goyon, C., Lahmann, B., Sio, H., MacLaren, S., Masse, L., Callahan, D., Hurricane, O., Wilson, D. C., Rice, N., Huang, H., Kong, C., Bae, J., Nikroo, A., Batha, S. H.
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Sprache:eng
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Zusammenfassung:Experiments at the National Ignition Facility (NIF) show that the implosion shape of inertial confinement fusion ablators is a key factor limiting performance. To achieve more predictable, shape tunable implosions, we have designed and fielded a large 4.2 case-to-capsule ratio target at the NIF using 6.72 mm diameter Au hohlraums and 1.6 mm diameter Cu-doped Be capsules. Simulations show that at these dimensions during a 10 ns 3-shock laser pulse reaching 275 eV hohlraum temperatures, the plasma flow from the hohlraum wall and ablator is not significant enough to impede beam propagation. Experiments measuring the shock symmetry and in-flight shell symmetry closely matched the simulations. Most notably, in two experiments, we demonstrated symmetry control from negative to positive Legendre P2 space by varying the inner to total laser power cone fraction by 5% below and above the predicted symmetric value. Some discrepancies found in 1st shock arrival times that could affect agreement in late time implosion symmetry suggest hohlraum and capsule modeling uncertainties do remain, but this target design reduces sensitivities to them.
ISSN:1070-664X
1089-7674
DOI:10.1063/1.5040995