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Toroidal and poloidal momentum transport studies in tokamaks

Tala, T. (författare)
Teknologian Tutkimuskeskus (VTT),Technical Research Centre of Finland (VTT)
Crombe, K. (författare)
Universiteit Gent,Ghent university
de Vries, P. C. (författare)
Euratom Ukaea Fusion Association
visa fler...
Ferreira, J. (författare)
Instituto Superior Tecnico
Mantica, P. (författare)
Consiglo Nazionale Delle Richerche
Peeters, A. G. (författare)
The University of Warwick
Andrew, Y. (författare)
Euratom Ukaea Fusion Association
Budny, R. (författare)
Princeton University
Corrigan, G. (författare)
Euratom Ukaea Fusion Association
Eriksson, Annika, 1978 (författare)
Chalmers tekniska högskola,Chalmers University of Technology
Garbet, X. (författare)
Le Commissariat à l’Énergie Atomique et aux Énergies Alternatives (CEA),The French Alternative Energies and Atomic Energy Commission (CEA)
Giroud, C. (författare)
Euratom Ukaea Fusion Association
Hua, M. D. (författare)
Euratom Ukaea Fusion Association
Nordman, Hans, 1957 (författare)
Chalmers tekniska högskola,Chalmers University of Technology
Naulin, V. (författare)
Danmarks Tekniske Universitet,Technical University of Denmark
Nave, M. F. (författare)
Instituto Superior Tecnico
Parail, V.V. (författare)
Euratom Ukaea Fusion Association
Rantamaeki, K. (författare)
Teknologian Tutkimuskeskus (VTT),Technical Research Centre of Finland (VTT)
Scott, B. D. (författare)
Max Planck Gesellschaft zur Förderung der Wissenschaften e.V. (MPG),Max Planck Society for the Advancement of Science (MPG)
Strand, Pär, 1968 (författare)
Chalmers tekniska högskola,Chalmers University of Technology
Tardini, G. (författare)
Max Planck Gesellschaft zur Förderung der Wissenschaften e.V. (MPG),Max Planck Society for the Advancement of Science (MPG)
Thyagaraja, A. (författare)
Euratom Ukaea Fusion Association
Weiland, Jan, 1944 (författare)
Chalmers tekniska högskola,Chalmers University of Technology
Zastrow, K. D. (författare)
Euratom Ukaea Fusion Association
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 (creator_code:org_t)
2007-11-16
2007
Engelska.
Ingår i: Plasma Physics and Controlled Fusion. - : IOP Publishing. - 1361-6587 .- 0741-3335. ; 49:12B, s. B291-B302
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • The present status of understanding of toroidal and poloidal momentum transport in tokamaks is presented in this paper. Similar energy confinement and momentum confinement times, i.e. tau(E)/tau(phi)approximate to 1 have been reported on several tokamaks. It is more important though, to study the local transport both in the core and edge plasma separately as, for example, in the core plasma, a large scatter in the ratio of the local effective momentum diffusivity to the ion heat diffusivity chi(phi eff)/chi(i.eff) among different tokamaks can be found. For example, the value of effective Prandtl number is typically around chi(phi eff)/chi(i.eff)approximate to 0.2 on JET while still tau(E)/tau(phi)approximate to 1 holds. Perturbative NBI modulation experiments on JET have shown, however, that a Prandtl number chi(phi)/chi(i) of around 1 is valid if there is an additional, significant inward momentum pinch which is required to explain the amplitude and phase behaviour of the momentum perturbation. The experimental results, i.e. the high Prandtl number and pinch, are in good qualitative and to some extent also in quantitative agreement with linear gyro-kinetic simulations. In contrast to the toroidal momentum transport which is clearly anomalous, the poloidal velocity is usually believed to be neo-classical. However, experimental measurements on JET show that the carbon poloidal velocity can be an order of magnitude above the predicted value by the neo-classical theory within the ITB. These large measured poloidal velocities, employed for example in transport simulations, significantly affect the calculated radial electric field and therefore the E x B flow shear and hence modify and can significantly improve the simulation predictions. Several fluid turbulence codes have been used to identify the mechanism driving the poloidal velocity to such high values. CUTIE and TRB turbulence codes and also the Weiland model predict the existence of an anomalous poloidal velocity, peaking in the vicinity of the ITB and driven dominantly by the flow due to the Reynold's stress. It is worth noting that these codes and models treat the equilibrium in a simplified way and this affects the geodesic curvature effects and geodesic acoustic modes. The neo-classical equilibrium is calculated more accurately in the GEM code and the simulations suggest that the spin-up of poloidal velocity is a consequence of the plasma profiles steepening when the ITB grows, following in particular the growth of the toroidal velocity within the ITB.

Ämnesord

NATURVETENSKAP  -- Fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences (hsv//eng)

Nyckelord

ANGULAR-MOMENTUM
ROTATION
TFTR TOKAMAK
SHEAR
NEUTRAL BEAM INJECTION
PLASMAS
JET
TEMPERATURE-GRADIENT MODE
DIII-D
TURBULENCE

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