Exploration of cross-beam energy transfer mitigation constraints for designing an ignition-scale direct-drive inertial confinement fusion driver

Author:

Colaïtis A.1ORCID,Follett R. K.2ORCID,Dorrer C.2ORCID,Seaton A. G.3ORCID,Viala D.1ORCID,Igumenshchev I.2ORCID,Turnbull D.2ORCID,Goncharov V.2ORCID,Froula D. H.2ORCID

Affiliation:

1. Centre Lasers Intenses et Applications, UMR 5107 1 , 351 Cours de la libération, 33400 Talence, France

2. Laboratory for Laser Energetics 2 , 250 East River Rd., Rochester, New York 14623-1212, USA

3. Los Alamos National Laboratory 3 , Los Alamos, New Mexico 87545, USA

Abstract

The compression of direct-drive inertial confinement fusion (ICF) targets is strongly impacted by cross-beam energy transfer (CBET), a laser-plasma instability that limits ablation pressure by redirecting laser energy outward and that is projected to be mitigated by laser bandwidth. Here, we explore various CBET mitigation constraints to guide the design of future ICF facilities. First, we find that the flat, Gaussian, and Lorentzian spectral shapes have similar CBET mitigation properties, and a flat shape with nine spectral lines is a good surrogate for what can be obtained with other spectral shapes. Then, we conduct a comprehensive study across energy scales and ignition designs. 3D hydrodynamic simulations are used to derive an analytical model for the expected CBET mitigation as a function of laser and plasma parameters. From this model, we study the bandwidth requirements of conventional and shock ignition designs across four different energy scales and find that they require between 0.5 and 3±0.2% relative bandwidth. Best mitigation is achieved when the beam radius over critical radius Rb/Rc is kept low during the drive while the plasma temperature is kept high. In a steady state, we find that the bandwidth required to mitigate 85% of CBET scales as (Rb/Rc)2.15Ln−0.58I0.7, where Ln is the density scale length, and I the laser intensity. Finally, we find that the chamber beam port layout does not influence CBET mitigation. In the case of a driver using many monochromatic beamlets, we find that ∼10 beamlets per port is required, with diminishing returns above ∼20.

Funder

Grand Équipement National De Calcul Intensif

National Nuclear Security Administration

Publisher

AIP Publishing

Subject

Condensed Matter Physics

Reference55 articles.

1. Ignition and high gain with ultrapowerful lasers;Phys. Plasmas,1994

2. The physics of inertial fusion,2004

3. Direct-drive inertial confinement fusion: A review;Phys. Plasmas,2015

4. Ignition of a laser-fusion target by a focusing shock wave;Sov. J. Plasma Phys.,1983

5. Shock ignition of thermonuclear fuel with high areal density;Phys. Rev. Lett.,2007

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