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Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment

Publication ,  Journal Article
Diallo, A; Canik, J; Göerler, T; Ku, SH; Kramer, GJ; Osborne, T; Snyder, P; Smith, DR; Guttenfelder, W; Bell, RE; Boyle, DP; Chang, CS ...
Published in: Nuclear Fusion
September 1, 2013

Progress in characterizing the edge stability and properties of the microinstabilities responsible for enhanced transport in the pedestal region is reported. The stability of the pedestal is characterized in high performance discharges on National Spherical Torus Experiment. These high performance plasmas are found to be ideal kink-peeling and ideal infinite-n ballooning unstable prior to the onset of edge-localized modes (ELM). The spatial structure of turbulence present during an ELM cycle in the pedestal region indicates poloidal spatial scales propagating in the ion diamagnetic drift direction at the pedestal top, and radial spatial scales . These propagating spatial scales are found to be poloidally elongated and consistent with ion-scale microturbulence. Both global and local gyrokinetic simulations have been performed to identify the microturbulence structure. The local gyrokinetic analysis indicates the presence of a linearly unstable hybrid kinetic ballooning mode and trapped electron mode with spatial scale and propagation direction consistent with experimental observations. In the global gyrokinetic analysis, the nonlinearly saturated potential fluctuations show radial and poloidal correlation lengths in agreement with experimental density fluctuation correlation length measurements. © 2013 IAEA, Vienna.

Duke Scholars

Published In

Nuclear Fusion

DOI

EISSN

1741-4326

ISSN

0029-5515

Publication Date

September 1, 2013

Volume

53

Issue

9

Related Subject Headings

  • Fluids & Plasmas
  • 5106 Nuclear and plasma physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
 

Citation

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Diallo, A., Canik, J., Göerler, T., Ku, S. H., Kramer, G. J., Osborne, T., … Sabbagh, S. (2013). Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment. Nuclear Fusion, 53(9). https://doi.org/10.1088/0029-5515/53/9/093026
Diallo, A., J. Canik, T. Göerler, S. H. Ku, G. J. Kramer, T. Osborne, P. Snyder, et al. “Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment.” Nuclear Fusion 53, no. 9 (September 1, 2013). https://doi.org/10.1088/0029-5515/53/9/093026.
Diallo A, Canik J, Göerler T, Ku SH, Kramer GJ, Osborne T, et al. Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment. Nuclear Fusion. 2013 Sep 1;53(9).
Diallo, A., et al. “Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment.” Nuclear Fusion, vol. 53, no. 9, Sept. 2013. Scopus, doi:10.1088/0029-5515/53/9/093026.
Diallo A, Canik J, Göerler T, Ku SH, Kramer GJ, Osborne T, Snyder P, Smith DR, Guttenfelder W, Bell RE, Boyle DP, Chang CS, Leblanc BP, Maingi R, Podestà M, Sabbagh S. Progress in characterization of the pedestal stability and turbulence during the edge-localized-mode cycle on National Spherical Torus Experiment. Nuclear Fusion. 2013 Sep 1;53(9).
Journal cover image

Published In

Nuclear Fusion

DOI

EISSN

1741-4326

ISSN

0029-5515

Publication Date

September 1, 2013

Volume

53

Issue

9

Related Subject Headings

  • Fluids & Plasmas
  • 5106 Nuclear and plasma physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics