Nonlinear dynamics of phase space zonal structures and energetic particle physics in fusion plasmas
arXiv:1410.8723 · doi:10.1088/1367-2630/17/1/013052
Abstract
A general theoretical framework for investigating nonlinear dynamics of phase space zonal structures is presented in this work. It is then, more specifically, applied to the limit where the nonlinear evolution time scale is smaller or comparable to the wave-particle trapping period. In this limit, both theoretical and numerical simulation studies show that non-adiabatic frequency chirping and phase locking could lead to secular resonant particle transport on meso- or macro-scales. The interplay between mode structures and resonant particles then provides the crucial ingredient to properly understand and analyze the nonlinear dynamics of Alfvén wave instabilities excited by non-perturbative energetic particles in burning fusion plasmas. Analogies with autoresonance in nonlinear dynamics and with superradiance in free electron lasers are also briefly discussed.
Cited by in corpus (8)
- Optimizing beam-ion confinement in ITER by adjusting the toroidal phase of the 3-D magnetic fields applied for ELM control
- Nonlinear reversed shear Alfven eigenmode saturation due to spontaneous zonal current generation
- Dynamics of reversed shear Alfvén eigenmode and energetic particles during current ramp-up
- On fast radial propagation of parametrically excited geodesic acoustic mode
- One dimensional reduced model for ITER relevant energetic particle transport
- Gyrokinetic theory for particle transport in fusion plasmas
- A "Trap-Release-Amplify" Model of Chorus Waves
- Nonlinear dynamics and phase space transport by chorus emission