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Evidence of anomalous electron heating in laboratory quasi-perpendicular collisionless shock experiments

ORAL

Abstract

We present results from laboratory experiments on supercritical magnetized collisionless shocks at conditions relevant to planetary bow-shocks. We report the first observation of fully developed shocks (x4 compression ratio and a downstream region decoupled from the piston) probed after seven upstream ion gyration periods. The data indicate the presence of a foot ahead of the density discontinuity, where both electrons and ions exhibit significant super-adiabatic heating. We directly measure x4 electron heating from an initial upstream with electron temperature Te ~ 100 eV and indirectly infer a downstream ion temperature Ti ~ 400 eV from energy conservation across the shock. This ion temperature is consistent with the broadening of the optical Thomson scattering ion-acoustic wave feature for a proton-dominated downstream plasma. As a consequence, we infer that electrons and ions are in equipartition, with an order-unity electron-proton downstream temperature ratio.

Publication: Valenzuela-Villaseca, et al., "First laboratory evidence of anomalous electron heating in magnetized \\quasi-perpendicular collisionless shocks", in preparation for Physical Review Letters.

Presenters

  • Vicente Valenzuela-Villaseca

    Princeton University

Authors

  • Vicente Valenzuela-Villaseca

    Princeton University

  • Samuel Richard Totorica

    Princeton University

  • Jesse Griff-McMahon

    Princeton Plasma Physics Laboratory

  • Li-Jen Chen

    NASA Goddard Space Flight Center

  • Sophia Malko

    Princeton Plasma Physics Laboratory (PPPL)

  • Peter V Heuer

    Laboratory for Laser Energetics (LLE), University of Rochester

  • Peera Pongkitiwanichakul

    Kasetsart University

  • William R Fox

    University of Maryland, College Park, University of Maryland

  • Derek B Schaeffer

    University of California, Los Angeles