Analytical and numerical studies of electron-temperature-gradient-driven inverse cascade of energy

POSTER

Abstract

Recent numerical results demonstrated that the interaction between ion-scale and electron-scale turbulence in tokamaks plays an important role in setting the overall level of energy transport (Howard et. al, 2015). One of the principal cross-scale interaction mechanisms is the inverse cascade of energy from electron scales to ion scales driven by unstable electron-temperature-gradient (ETG) modes. This inverse cascade mechanism is not understood. We report on a set of novel fluid-kinetic simulations and analytical results aimed at elucidating the physical mechanisms underpinning the ETG inverse cascade in slab geometry, using a reduced gyrokinetic model (Zocco and Schekochihin, 2011).

*L. M. Milanese acknowledges support from the DoE under grant no. DE-FG02-91ER54109.

Presenters

  • Lucio M Milanese

    • Massachusetts Inst of Tech-MIT
    • Massachusetts Institute of Technology

Authors

  • Lucio M Milanese

    • Massachusetts Inst of Tech-MIT
    • Massachusetts Institute of Technology
  • Nuno F Loureiro

    • Massachusetts Inst of Tech-MIT
    • Massachusetts Institute of Technology
    • Plasma Science and Fusion Center, MIT, Cambridge, USA
  • Alexander A Schekochihin

    • Oxford
    • University of Oxford
  • William D Dorland

    • University of Maryland
    • Univ of Maryland-College Park
    • University of Maryland - College Park