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High Frequency Geodesic Acoustic Modes in Electron Scale Turbulence

Plasma Physics 2013-12-23 v2

Abstract

In this work the finite β\beta-effects of an electron branch of the geodesic acoustic mode (el-GAM) driven by electron temperature gradient (ETG) modes is presented. The work is based on a fluid description of the ETG mode retaining non-adiabatic ions and the dispersion relation for el-GAMs driven non-linearly by ETG modes is derived. The ETG growth rate from the fluid model is compared to the results found from gyrokinetic simulations with good agreement. A new saturation mechanism for ETG turbulence through the interaction with el-GAMs is found, resulting in a significantly enhanced ETG turbulence saturation level compared to the mixing length estimate. It is shown that the el-GAM may be stabilized by an increase in finite β\beta as well as by increasing non-adiabaticity. The decreased GAM growth rates is due to the inclusion of the Maxwell stress.

Keywords

Cite

@article{arxiv.1301.1435,
  title  = {High Frequency Geodesic Acoustic Modes in Electron Scale Turbulence},
  author = {Johan Anderson and Hans Nordman and Andreas Skyman and Raghvendra Singh and Predhiman Kaw},
  journal= {arXiv preprint arXiv:1301.1435},
  year   = {2013}
}

Comments

15 pages, 4 figures. Presented at the IAEA conference 2012

R2 v1 2026-06-21T23:05:34.072Z