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Effect of Flow on Laser–Plasma Interactions near the Quarter-Critical Density in the Plasmas of Inertial Confinement Fusion

ORAL

Abstract

In the direct-drive approach to inertial confinement fusion (ICF), the laser–plasma interaction (LPI) in the plasma corona determines the coupling of laser power to the imploding targets. Under conditions of direct-drive ICF experiments on the OMEGA Laser System, the two most important LPI processes are the two-plasmon decay (TPD) in the plasma region near the quarter-critical density and cross-beam energy transfer (CBET). For both TPD and CBET the nonlinear saturation is determined by the level of low-frequency ion-acoustic perturbations. The resonance condition for the ion-acoustic waves strongly depends on the plasma flow, and velocities close to Mach-1 value often result in the highest levels of ion-acoustic waves. We consider the effect of plasma flow on LPI in the region near quarter-critical density where flow influences ion-acoustic perturbations and, consequently, the nonlinear saturation of both TPD and CBET, and the interplay between them. The results of 3-D simulations with the laser-plasma simulation environment (LPSE)1 are compared with the theoretical analysis. This material is based upon work supported by the Department of Energy National Nuclear Security Administration under Award Number DE-NA0003856.

[1] J. F. Myatt et al., Phys. Plasmas 24, 056308 (2017).


Presenters

  • Andrei V Maximov

    University of Rochester

Authors

  • Andrei V Maximov

    University of Rochester

  • David Turnbull

    University of Rochester, Laboratory for Laser Energetics, University of Rochester

  • Dana H Edgell

    LLE, Laboratory for Laser Energetics, University of Rochester

  • Russell K Follett

    Laboratory for Laser Energetics - Rochester, Laboratory for Laser Energetics, University of Rochester

  • Han Wen

    University of Rochester

  • John P Palastro

    Laboratory for Laser Energetics, University of Rochester, Laboratory for Laser Energetics, Rochester, New York, 14623, USA, Laboratory for Laser Energetics, University of Rochester, University of Rochester

  • Dustin Froula

    University of Rochester, Laboratory for Laser Energetics, Laboratory for Laser Energetics, U. of Rochester, Laboratory for Laser Energetics, University of Rochester