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BOUT++: a framework for parallel plasma fluid simulations

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arxiv 0810.5757 v2 pith:RHBDIVCK submitted 2008-10-31 physics.plasm-ph physics.comp-ph

classification physics.plasm-phphysics.comp-ph
keywords codeboutelmsfluidlinearpresentedsimulationsagreement
verification ladder T0 review T1 audit T2 compute T3 formal
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A new modular code called BOUT++ is presented, which simulates 3D fluid equations in curvilinear coordinates. Although aimed at simulating Edge Localised Modes (ELMs) in tokamak X-point geometry, the code is able to simulate a wide range of fluid models (magnetised and unmagnetised) involving an arbitrary number of scalar and vector fields, in a wide range of geometries. Time evolution is fully implicit, and 3rd-order WENO schemes are implemented. Benchmarks are presented for linear and non-linear problems (the Orszag-Tang vortex) showing good agreement. Performance of the code is tested by scaling with problem size and processor number, showing efficient scaling to thousands of processors. Linear initial-value simulations of ELMs using reduced ideal MHD are presented, and the results compared to the ELITE linear MHD eigenvalue code. The resulting mode-structures and growth-rate are found to be in good agreement (BOUT++ = 0.245, ELITE = 0.239). To our knowledge, this is the first time dissipationless, initial-value simulations of ELMs have been successfully demonstrated.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Simulations of the churning mode: toroidally symmetric plasma convection and turbulence around the X-points in a snowflake divertor

    physics.plasm-ph 2025-05 conditional novelty 6.0 of 10

    The churning mode is shown to drive extra transport across snowflake divertor null points above beta_pm ~ 8% and to change flux surfaces and power sharing in ways diffusive models miss.

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