Fast electron transport dynamics and energy deposition in magnetized, imploded cylindrical plasma

Author:

Kawahito D.1ORCID,Bailly-Grandvaux M.1ORCID,Dozières M.1,McGuffey C.1,Forestier-Colleoni P.1,Peebles J.2,Honrubia J. J.3,Khiar B.4,Hansen S.5,Tzeferacos P.26,Wei M. S.27,Krauland C. M.7,Gourdain P.68,Davies J. R.2,Matsuo K.9ORCID,Fujioka S.9,Campbell E. M.2,Santos J. J.10,Batani D.10,Bhutwala K.1,Zhang S.1,Beg F. N.1ORCID

Affiliation:

1. Center for Energy Research, University of California San Diego, La Jolla, CA 92093-0417, USA

2. Laboratory for Laser Energetics, University of Rochester, Rochester, NY 14623, USA

3. E.T.S.I. Industriales, Universidad Politecnica de Madrid, Madrid 28040, Spain

4. Office National d’Etudes et de Recherches Aérospatiales (ONERA), Palaiseau 91123, France

5. Sandia National Laboratories, Albuquerque, NM 87185, USA

6. Department of Physics and Astronomy, University of Rochester, Rochester, NY 14627, USA

7. General Atomics, San Diego, CA 92186, USA

8. Extreme State Physics Laboratory, University of Rochester, Rochester, NY 14627, USA

9. Institute of Laser Engineering, Osaka University, Suita, Osaka 565-0871, Japan

10. Université de Bordeaux-CNRS-CEA, CELIA UMR, 5107 33400 Talence, France

Abstract

Inertial confinement fusion approaches involve the creation of high-energy-density states through compression. High gain scenarios may be enabled by the beneficial heating from fast electrons produced with an intense laser and by energy containment with a high-strength magnetic field. Here, we report experimental measurements from a configuration integrating a magnetized, imploded cylindrical plasma and intense laser-driven electrons as well as multi-stage simulations that show fast electrons transport pathways at different times during the implosion and quantify their energy deposition contribution. The experiment consisted of a CH foam cylinder, inside an external coaxial magnetic field of 5 T, that was imploded using 36 OMEGA laser beams. Two-dimensional (2D) hydrodynamic modelling predicts the CH density reaches 9.0 g cm 3 , the temperature reaches 920 eV and the external B-field is amplified at maximum compression to 580 T. At pre-determined times during the compression, the intense OMEGA EP laser irradiated one end of the cylinder to accelerate relativistic electrons into the dense imploded plasma providing additional heating. The relativistic electron beam generation was simulated using a 2D particle-in-cell (PIC) code. Finally, three-dimensional hybrid-PIC simulations calculated the electron propagation and energy deposition inside the target and revealed the roles the compressed and self-generated B-fields play in transport. During a time window before the maximum compression time, the self-generated B-field on the compression front confines the injected electrons inside the target, increasing the temperature through Joule heating. For a stronger B-field seed of 20 T, the electrons are predicted to be guided into the compressed target and provide additional collisional heating. This article is part of a discussion meeting issue ‘Prospects for high gain inertial fusion energy (part 2)’.

Funder

US Department of Energy

National Science Foundation

Los Alamos National Laboratory

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Computational study of laser-produced plasma, EUV generation, and the impact of magnetic fields;AIP Advances;2024-06-01

2. Magnetization of high-density plasma with a jet velocity of hundreds of km/s;Physical Review E;2022-11-28

3. Prospects for high gain inertial fusion energy: an introduction to the second edition;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2020-12-07

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