Toward more robust ignition of inertial fusion targets

Author:

Lee J. J.1ORCID,Ruskov R. T.1ORCID,Martin H.1ORCID,Hughes S.1ORCID,von der Layen M. W.1,Paddock R. W.1ORCID,Timmis R.1ORCID,Ouatu I.1ORCID,Feng Q. S.1,Howard S.1ORCID,Atonga E.1,Aboushelbaya R.1ORCID,Arber T. D.2ORCID,Bingham R.3ORCID,Norreys P. A.14ORCID

Affiliation:

1. Department of Physics, Atomic and Laser Physics Sub-Department, University of Oxford, Clarendon Laboratory 1 , Parks Road, Oxford OX1 3PU, United Kingdom

2. Centre for Fusion, Space, and Astrophysics, Department of Physics, University of Warwick 2 , Coventry CV4 7AL, United Kingdom

3. Central Laser Facility, Rutherford Appleton Laboratory 3 , Didcot, Oxon OX11 0QX, United Kingdom

4. John Adams Institute for Accelerator Science, University of Oxford 4 , Denys Wilkinson Building, Keble Road, Oxford OX1 3RH, United Kingdom

Abstract

Following the 3.15 MJ fusion milestone at the National Ignition Facility, the further development of inertial confinement fusion, both as a source for future electricity generation and for high-energy-density physics applications, requires the development of more robust ignition concepts at current laser facility energy scales. This can potentially be achieved by auxiliary heating the hotspot of low convergence wetted foam implosions where hydrodynamic and parametric instabilities are minimized. This paper presents the first multi-dimensional Vlasov–Maxwell and particle-in-cell simulations to model this collisionless interaction, only recently made possible by access to the largest modern supercomputers. The key parameter of interest is the maximum fraction of energy that can be extracted from the electron beams into the hotspot plasma. The simulations indicate that significant coupling efficiencies are achieved over a wide range of beam parameters and spatial configurations. The implications for experimental tests on the National Ignition Facility are discussed.

Funder

Engineering and Physical Sciences Research Council

Science and Technology Facilities Council

Oxford-ShanghaiTech

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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