4.4 Article

Hybrid simulations of Alfven modes driven by energetic particles

Journal

PHYSICS OF PLASMAS
Volume 23, Issue 12, Pages -

Publisher

AIP Publishing
DOI: 10.1063/1.4971806

Keywords

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Funding

  1. Fundamental Research Fund for Chinese Central Universities [2016FZA3003]
  2. ITER-CN [2013GB104004, 2013GB111004]
  3. China Postdoctoral Science Foundation [2015M571859]
  4. National Natural Science Foundation of China [41474123, 11505152]

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A hybrid kinetic-magnetohydrodynamic code (CLT-K) is developed to study nonlinear dynamics of Alfven modes driven by energetic particles (EP). A n = 2 toroidicity-induced discrete shear Alfven eigenmode (TAE)-type energetic particle mode (EPM) with two dominant poloidal harmonics (m = 2 and 3) is first excited and its frequency remains unchanged in the early phase. Later, a new branch of the n = 2 frequency with a single dominant poloidal mode (m = 3) splits from the original TAE-type EPM. The new single m EPM (m = 3) slowly moves radially outward with the downward chirping of the frequency and the mode amplitude remains at a higher level. The original EPM remains at its original position without the frequency chirping, but its amplitude decays with time. Finally, the m = 3 EPM becomes dominant and the frequency falls into the beta-induced gap of the Alfven continuum. The redistribution of the delta f in the phase space is consistent with the mode frequency downward chirping and the drifting direction of the resonance region is mainly due to the biased free energy profile. The transition from a TAE-type EPM to a single m EPM is mainly caused by extension of the p = 0 trapped particle resonance in the phase space. Published by AIP Publishing.

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