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Understanding the Kinetic Physics of Particle Energization at Quasiperpendicular Collisionless Shocks Using the Field-Particle Correlation Technique

ORAL

Abstract

Collisionless shocks play an important role in the conversion of supersonic flow energy to thermal energy at key boundaries in the heliosphere, such as at planetary bow shocks and the termination shock. In addition, collisionless shocks can lead to the acceleration of a small fraction of particles to high energy. Many of these energization mechanisms remain poorly understood, but kinetic simulations and spacecraft observations present valuable opportunities to improve our understanding of the fundamental kinetic physics. The recently developed field-particle correlation technique was devised to identify and characterize the mechanisms that energize particles in the six-dimensional (3D-3V) phase space of kinetic plasmas. Such mechanisms underlie the fundamental plasma processes of kinetic turbulence, collisionless magnetic reconnection, collisionless shocks, and kinetic instabilities. Here we present an overview of how the field-particle correlation method can be applied to gain deeper insight into the kinetic plasma processes that govern how particles are energized at collisionless shocks. Requiring only single-point measurements in space, the technique can be used to identify well-known acceleration mechanisms, such as shock drift acceleration, using either kinetic numerical simulations or spacecraft observations, and modifications are able to separate the energization mediated by micro-instabilities arising in the shock transition from that due to the macroscopic shock fields.

Presenters

  • Gregory G Howes

    University of Iowa, Univ. Iowa

Authors

  • Gregory G Howes

    University of Iowa, Univ. Iowa

  • James L Juno

    Princeton Plasma Physics Laboratory

  • Collin R Brown

    University of Iowa

  • Colby C Haggerty

    University of Hawaii

  • Sage Constantinou

    University of Hawaii

  • Jason M TenBarge

    Princeton University

  • Damiano Caprioli

    University of Chicago

  • Anatoly Spitkovsky

    Princeton University

  • Lynn B Wilson

    NASA Goddard Space Flight Center