What is Transit-Time Damping and How to Identify it in Space Plasma Turbulence
ORAL
Abstract
The term "Transit-Time Damping" has been defined variably across different fields of plasma physics. In the context of plasma turbulence, known as the magnetic analogue of Landau damping, transit-time damping describes a process in a time-varying magnetic field where the magnetic mirror force---arising from the parallel gradient of magnetic field magnitude---interacts with resonant plasma particles. This interaction results in the collisionless damping of electromagnetic waves and energizes the particles via the perpendicular component of the induced electric field. In this study, we achieve two main objectives: 1) constructing a model of single particle motion in a slowly-varying magnetic mirror field and employing multiple-scale analysis to show the physics of energization; 2) utilizing the field-particle correlation technique to discover the unique velocity-space signature of transit-time damping and presenting examples of its identification from plasma turbulence simulation data, alongside the comparison with the signature and detection of Landau damping.
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Publication: Huang, Rui, Gregory G. Howes, and Andrew J. McCubbin. 2024 The Velocity-Space Signature of Transit-Time Damping. J. Plasma Phys. (Accepted)
Howes, G. G., Huang, R. & Felix, A. A. 2024 The Physics of the Magnetic Mirror Force and Transit-Time Damping: Asymptotic Solution. J. Plasma Phys. (In preparation)
Presenters
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Rui Huang
University of Iowa
Authors
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Rui Huang
University of Iowa
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Gregory Gershom Howes
University of Iowa
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Andrew J McCubbin
John Hopkins University
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Alberto Felix
University of Iowa