Formation of solitary zonal structures via the modulational instability of drift waves
arXiv:1902.06870 · doi:10.1088/1361-6587/ab16a8
Abstract
The dynamics of the radial envelope of a weak coherent drift wave is approximately governed by a nonlinear Schrödinger equation, which emerges as a limit of the modified Hasegawa-Mima equation. The nonlinear Schrödinger equation has well-known soliton solutions, and its modulational instability can naturally generate solitary structures. In this paper, we demonstrate that this simple model can adequately describe the formation of solitary zonal structures in the modified Hasegawa-Mima equation, but only when the amplitude of the coherent drift wave is relatively small. At larger amplitudes, the modulational instability produces stationary zonal structures instead. Furthermore, we find that incoherent drift waves with beam-like spectra can also be modulationally unstable to the formation of solitary or stationary zonal structures, depending on the beam intensity. Notably, we show that these drift waves can be modeled as quantumlike particles ("driftons") within a recently developed phase-space (Wigner-Moyal) formulation, which intuitively depicts the solitary zonal structures as quasi-monochromatic drifton condensates. Quantumlike effects, such as diffraction, are essential to these condensates; hence, the latter cannot be described by wave-kinetic models that are based on the ray approximation.
13 pages, 7 figures
References in corpus (5)
- Bifurcation in electrostatic resistive drift wave turbulence
- Transition to subcritical turbulence in a tokamak plasma
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Cited by in corpus (5)
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- Wave-kinetic approach to zonal-flow dynamics: recent advances
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- Nonlinear saturation and oscillations of collisionless zonal flows
- Suppression of temperature-gradient-driven turbulence by sheared flows in fusion plasmas