Simulations of a hydrogen-filled capillary discharge waveguide

N. A. Bobrova, A. A. Esaulov, J.-I. Sakai, P. V. Sasorov, D. J. Spence, A. Butler, S. M. Hooker, and S. V. Bulanov
Phys. Rev. E 65, 016407 – Published 17 December 2001
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Abstract

A one-dimensional dissipative magnetohydrodynamics code is used to investigate the discharge dynamics of a waveguide for high-intensity laser pulses: the gas-filled capillary discharge waveguide. Simulations are performed for the conditions of a recent experimental measurement of the electron density profile in hydrogen-filled capillaries [D. J. Spence et al., Phys. Rev. E 63, 015401 (R) (2001)], and are found to be in good agreement with those results. The evolution of the discharge in this device is found to be substantially different to that found in Z-pinch capillary discharges, owing to the fact that the plasma pressure is always much higher than the magnetic pressure. Three stages of the capillary discharge are identified. During the last of these the distribution of plasma inside the capillary is determined by the balance between ohmic heating, and cooling due to electron heat conduction. A simple analytical model of the discharge during the final stage is presented, and shown to be in good agreement with the magnetohydrodynamic simulations.

  • Received 2 May 2001

DOI:https://doi.org/10.1103/PhysRevE.65.016407

©2001 American Physical Society

Authors & Affiliations

N. A. Bobrova1, A. A. Esaulov1,2, J.-I. Sakai2, P. V. Sasorov1, D. J. Spence3, A. Butler3, S. M. Hooker3, and S. V. Bulanov4

  • 1Institute for Theoretical and Experimental Physics, Bol’shaya Cheremushkinskaya Street 25, 117259 Moscow, Russia
  • 2Laboratory for Plasma Astrophysics, Toyama University, 3190 Gofuku, Toyama 930-8555, Japan
  • 3Department of Physics, University of Oxford, Oxford OX1 3PU, United Kingdom
  • 4General Physics Institute of the Russian Academy of Sciences, Vavilov Street 38, 117942 Moscow, Russia

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Vol. 65, Iss. 1 — January 2002

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