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Beam anisotropy effect on Alfvén eigenmode stability in ITER-like plasmas
74
Citations
27
References
2005
Year
EngineeringPlasma SciencePlasma PhysicsBeam Anisotropy EffectPlasma InstabilitiesPlasma TheoryPlasma SimulationMagnetohydrodynamicsPlasma ConfinementPhysicsApplied Plasma PhysicEnergetic ParticlesFundamental Plasma PhysicPlasma ExperimentPlasma InstabilityNuclear AstrophysicsNatural SciencesApplied PhysicsTae Growth Rate
This work studies the stability of the toroidicity-induced Alfvén eigenmodes (TAE) in the proposed ITER burning plasma experiment, which can be driven unstable by two groups of energetic particles, the 3.5 MeV α-particle fusion products and the tangentially injected 1 MeV beam ions. Both species are super-Alfvénic but they have different pitch angle distributions and the drive for the same pressure gradients is typically stronger from co-injected beam ions as compared with the isotropically distributed α-particles. This study includes the effect of anisotropy of the beam ion distribution function on TAE growth rate directly via the additional velocity space drive and indirectly in terms of the enhanced effect of the resonant particle phase space density. For near parallel injection TAEs are marginally unstable if the injection aims at the plasma centre, where the ion Landau damping is strong, whereas with the off-axis neutral beam injection the instability is stronger with the growth rate near 0.5% of the TAE mode frequency. In contrast, for perpendicular beam injection TAEs are predicted to be stabilized in nominal ITER discharges.
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