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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Professor Felix Parra Diaz

Visitor

Research theme

  • Plasma physics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics
felix.parradiaz@physics.ox.ac.uk
Rudolf Peierls Centre for Theoretical Physics
  • About
  • Publications

Intrinsic rotation in tokamaks: theory

Plasma Physics and Controlled Fusion IOP Publishing 57:4 (2015) 045002

Authors:

Felix I Parra, Michael Barnes
More details from the publisher
Details from ArXiV

Dependence of intrinsic rotation reversals on collisionality in MAST

Nuclear Fusion IOP Publishing 55:3 (2015) 032003

Authors:

JC Hillesheim, FI Parra, M Barnes, NA Crocker, H Meyer, WA Peebles, R Scannell, A Thornton
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Details from ArXiV

Intuition for the radial penetration of flux surface shaping in tokamaks

Plasma Physics and Controlled Fusion IOP Publishing 57:3 (2015) 035006-035006

Authors:

Justin Ball, Felix I Parra
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Less constrained omnigeneous stellarators

Nuclear Fusion IOP Publishing 55:3 (2015) 033005

Authors:

Felix I Parra, Iván Calvo, Per Helander, Matt Landreman
More details from the publisher
Details from ArXiV

Radial penetration of flux surface shaping in tokamaks

Plasma Phys. Control. Fusion 57 (2015) 035006-035006

Authors:

J Ball, FI Parra

Abstract:

Using analytic calculations, the effects of the edge flux surface shape and the toroidal current profile on the penetration of flux surface shaping are investigated in a tokamak. It is shown that the penetration of shaping is determined by the poloidal variation of the poloidal magnetic field on the surface. This fact is used to investigate how different flux surface shapes penetrate from the edge. Then, a technique to separate the effects of magnetic pressure and tension in the Grad-Shafranov equation is presented and used to calculate radial profiles of strong elongation for nearly constant current profiles. Lastly, it is shown that more hollow toroidal current profiles are significantly better at conveying shaping from the edge to the core.
More details from the publisher
Details from ArXiV

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