A phase-shift-periodic parallel boundary condition for low-magnetic-shear scenarios
ORAL
Abstract
We formulate a generalized periodic boundary condition that is suitable for simulations of plasmas with low magnetic shear. This is done by applying a phase shift in the binormal direction when crossing the parallel boundary. While this phase shift can be set to zero without loss of generality in the local flux-tube limit when employing the twist-and-shift boundary condition, we show that this is not the most general case when employing periodic parallel boundaries, and may not even be the most desirable. A non-zero phase shift is shown to have measurable effects in periodic gyrokinetic simulations, and can be used to avoid the convective cells that plague simulations of the three-dimensional Hasegawa-Wakatani system. We propose a numerical program where a sampling of periodic simulations at random pseudo-irrational flux surfaces are used to determine physical observables in a statistical sense. This approach can serve as an alternative to applying the twist-and-shift boundary condition to low-magnetic-shear scenarios which, while more straightforward, can be computationally demanding.
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Presenters
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Denis A St-Onge
University of Oxford
Authors
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Denis A St-Onge
University of Oxford
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Michael Barnes
University of Oxford
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Felix I Parra
Princeton Plasma Physics Laboratory, Princeton University, PPPL