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Magnetic field effects on laser energy deposition and filamentation in magneto-inertial fusion relevant plasmas

Authors :
Todd Ditmire
Mark Kimmel
D. J. Ampleford
Patrick K. Rambo
J. W. Kellogg
Jens Schwarz
Jonathon Shores
J. Long
Hernan Quevedo
John L. Porter
N. R. Riley
Roger D. Bengtson
Sean M Lewis
M. R. Weis
J. W. Stahoviak
Kenneth W. Struve
Matthias Geissel
C. S. Speas
A. J. Harvey-Thompson
Boris Breizman
Quinn Looker
M. R. Gomez
Source :
Physics of Plasmas. 28:122701
Publication Year :
2021
Publisher :
AIP Publishing, 2021.

Abstract

We report on experimental measurements of how an externally imposed magnetic field affects plasma heating by kJ-class, nanosecond laser pulses. The experiments reported here took place in gas cells analogous to magnetized liner inertial fusion targets. We observed significant changes in laser propagation and energy deposition scale lengths when a 12T external magnetic field was imposed in the gas cell. We find evidence that the axial magnetic field reduces radial electron thermal transport, narrows the width of the heated plasma, and increases the axial plasma length. Reduced thermal conductivity increases radial thermal gradients. This enhances radial hydrodynamic expansion and subsequent thermal self-focusing. Our experiments and supporting 3D simulations in helium demonstrate that magnetization leads to higher thermal gradients, higher peak temperatures, more rapid blast wave development, and beam focusing with an applied field of 12T.

Details

ISSN :
10897674 and 1070664X
Volume :
28
Database :
OpenAIRE
Journal :
Physics of Plasmas
Accession number :
edsair.doi...........c299692b466c956f63bc13f5b5bc0328
Full Text :
https://doi.org/10.1063/5.0023601