2D Core Turbulence Properties on DIII-D

POSTER

Abstract

Quantitative measurements of the inherently 2D turbulence characteristics in magnetized plasmas are compared with nonlinear simulation. This comparison substantiates key aspects of the $E\times B$ shear model of turbulence suppression that explains enhanced confinement. The critical dynamics underlying turbulent transport occur in the plane perpendicular to the magnetic field $(k_\| \ll k_\perp)$. These localized long-wavelength $(k_\perp \rho_i < 1)$ density turbulence measurements are obtained in the core $(0.3 < r/a < 0.9)$ of DIII-D L-mode plasmas with a 2D rectangular array of Beam Emission Spectroscopy channels. Radial and poloidal correlation lengths are found to scale with the ion gyroradius and demonstrate a poloidally elongated eddy structure. $S(k_r,k_\theta )$ spectra are compared with GYRO simulations: key features (wavenumber peak, correlation lengths) compare well, however the simulations indicate a sheared eddy structure at outer radii that is not observed. Measured local decorrelation and shearing rates are also compared.

*Work supported by the US DOE under DOE under DE-FG02-89ER53296, DE-FG02-08ER54999, DE-FG02-07ER54917, and DE-AC05-06OR23100.

Authors

  • M.W. Shafer

    • U. Wisconsin-Madison
    • U. Wisc.-Madison
  • G.R. McKee

    • University of Wisconsin-Madison
    • U. Wisconsin-Madison
    • U. Wisc.
  • R.J. Fonck

    • U. Wisconsin-Madison
  • D.J. Schlossberg

    • U. Wisconsin-Madison
  • Z. Yan

    • U. Wisconsin-Madison
  • C. Holland

    • UCSD
  • A.E. White

    • ORISE
    • UCLA (presently at ORISE)