Diagnosing magnetic fields in cylindrical implosions with oblique proton radiography

Author:

Heuer P. V.1ORCID,Leal L. S.1ORCID,Davies J. R.1ORCID,Hansen E. C.1ORCID,Barnak D. H.1ORCID,Peebles J. L.1ORCID,García-Rubio F.1ORCID,Pollock B.2ORCID,Moody J.2ORCID,Birkel A.3ORCID,Seguin F. H.3

Affiliation:

1. Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA

2. Lawrence Livermore National Laboratory, Livermore, California 94550, USA

3. Plasma Science and Fusion Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA

Abstract

Two experiments at the OMEGA Laser System used oblique proton radiography to measure magnetic fields in cylindrical implosions with and without an applied axial magnetic field. Although the goal of both experiments was to measure the magnitude of the compressed axial magnetic field in the core of the implosion, this field was obfuscated by two features in the coronal plasma produced by the compression beams: an azimuthal self-generated magnetic field and small length scale, high-amplitude structures attributed to collisionless effects. In order to understand these features, synthetic radiographs are generated using fields produced by 3D HYDRA simulations. These synthetic radiographs reproduce the features of the experimental radiographs with the exception of the small-scale structures. A direct inversion algorithm is successfully applied to a synthetic radiograph but is only partially able to invert the experimental radiographs in part because some protons are blocked by the field coils. The origins of the radiograph features and their dependence on various experimental parameters are explored. The results of this analysis should inform future measurements of compressed axial magnetic fields in cylindrical implosions.

Funder

National Nuclear Security Administration

Advanced Research Projects Agency - Energy

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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