Vlasov gyrokinetic simulations of ion-temperature-gradient driven instabilities
Author(s) -
Giovanni Manfredi,
M. Shoucri,
R. O. Dendy,
A. Ghizzo,
P. Bertrand
Publication year - 1996
Publication title -
physics of plasmas
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.75
H-Index - 160
eISSN - 1089-7674
pISSN - 1070-664X
DOI - 10.1063/1.871846
Subject(s) - gyroradius , physics , vlasov equation , computational physics , gyrokinetics , electron , magnetic field , eulerian path , adiabatic process , test particle , electron temperature , turbulence , landau damping , plasma , classical mechanics , tokamak , mechanics , quantum mechanics , lagrangian , mathematical physics
An Eulerian code that solves the gyrokinetic Vlasov equation in slab geometry is presented. It takes into account the E×B and polarization drifts in the plane perpendicular to the magnetic field, and kinetic effects in the parallel direction. The finite Larmor radius is modelled by a convolution operator. The relation is established between this model and others proposed previously, and they are shown to be equivalent in the limit of long wavelengths and small Larmor radii. The code is applied to investigate ion‐temperature‐gradient modes in the quasi‐neutral regime, with adiabatic electrons. Numerical results are reported for a wide range of parameters, including density and temperature profiles, magnetic field strength, and ion to electron temperature ratio. Normally the plasma evolves towards long wavelength structures, although in some cases (when Landau damping is very weak) more strongly turbulent regimes are observed. Test particles are used to compute diffusion coefficients both in real space and ...
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