Kinetic simulations comparing quasi-parallel and quasi-perpendicular piston-driven collisionless shock dynamics in magnetized laboratory plasmas

Author:

Pongkitiwanichakul P.1ORCID,Schaeffer D. B.2ORCID,Fox W.3ORCID,Ruffolo D.4ORCID,Donaghy J.5ORCID,Germaschewski K.5ORCID

Affiliation:

1. Department of Physics, Faculty of Science, Kasetsart University 1 , Bangkok 10900, Thailand

2. Department of Physics and Astronomy, University of California–Los Angeles 2 , Los Angeles, California 90095, USA

3. Princeton Plasma Physics Laboratory, Princeton, New Jersey 08543, USA and Department of Astrophysical Sciences, Princeton University 3 , Princeton, New Jersey 08540, USA

4. Department of Physics, Faculty of Science, Mahidol University 4 , Bangkok 10400, Thailand

5. Space Science Center, University of New Hampshire 5 , Durham, New Hampshire 03824, USA

Abstract

Magnetized collisionless shocks are common in astrophysical systems, and scaled versions can be created in laboratory experiments by utilizing laser-driven piston plasmas to create these shocks in a magnetized background plasma. A key parameter for these experiments is the angle θB between the shock propagation direction and the background magnetic field. We performed quasi-1D piston-driven shock simulations to explore shock formation, evolution, and key observables relevant to laboratory experiments for a range of shock angles between θB=90° to θB=30°. Our results show that the spatial and temporal scales of shock formation for all angles considered are similar when expressed in terms of the perpendicular component of the magnetic field. In a steady state, ion and electron temperatures become more isotropic, and the electron-to-ion temperature ratio is higher for smaller θB. At θB=30°, ion heating parallel to the magnetic field becomes dominant, associated with more ions being reflected at one discontinuity and subsequently trapped by the next discontinuity due to shock reformation.

Funder

National Research Council of Thailand

Kasetsart University Research and Development Institute

Princeton Plasma Physics Laboratory

NASA Headquarters

National Science, Research and Innovation Fund

DOE Fusion Energy Sciences

Publisher

AIP Publishing

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