Role of hot electrons in shock ignition constrained by experiment at the National Ignition Facility

Shock ignition is a scheme for direct drive inertial confinement fusion that offers the potential for high gain with the current generation of laser facility; however, the benefits are thought to be dependent on the use of low adiabat implosions without laser–plasma instabilities reducing drive and...

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Veröffentlicht in:Physics of plasmas 2022-08, Vol.29 (8)
Hauptverfasser: Barlow, D., Goffrey, T., Bennett, K., Scott, R. H. H., Glize, K., Theobald, W., Anderson, K., Solodov, A. A., Rosenberg, M. J., Hohenberger, M., Woolsey, N. C., Bradford, P., Khan, M., Arber, T. D.
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Sprache:eng
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Zusammenfassung:Shock ignition is a scheme for direct drive inertial confinement fusion that offers the potential for high gain with the current generation of laser facility; however, the benefits are thought to be dependent on the use of low adiabat implosions without laser–plasma instabilities reducing drive and generating hot electrons. A National Ignition Facility direct drive solid target experiment was used to calibrate a 3D Monte Carlo hot-electron model for 2D radiation-hydrodynamic simulations of a shock ignition implosion. The α = 2.5 adiabat implosion was calculated to suffer a 35% peak areal density decrease when the hot electron population with temperature T h = 55   keV and energy E h = 13   kJ was added to the simulation. Optimizing the pulse shape can recover ∼ 1 / 3 of the peak areal density lost due to a change in shock timing. Despite the harmful impact of laser–plasma instabilities, the simulations indicate shock ignition as a viable method to improve performance and broaden the design space of near ignition high adiabat implosions.
ISSN:1070-664X
1089-7674
DOI:10.1063/5.0097080