ATEQ: Adaptive toroidal equilibrium code

Author:

Zheng Linjin1ORCID,Kotschenreuther M. T.1,Waelbroeck F. L.1ORCID,Todo Y.2ORCID

Affiliation:

1. Institute for Fusion Studies, University of Texas at Austin, Austin, Texas 78712, USA

2. National Institute for Fusion Science, National Institutes of Natural Sciences, Toki, Gifu 509-5292, Japan

Abstract

A radially adaptive numerical scheme is developed to solve the Grad–Shafranov equation for axisymmetric magnetohydrodynamic equilibrium. A decomposition with independent solutions is employed in the radial direction, and Fourier decomposition is used in the poloidal direction. The independent solutions are then obtained using an adaptive shooting scheme together with the multi-region matching technique in the radial direction. Accordingly, the adaptive toroidal equilibrium (ATEQ) code is constructed for axisymmetric equilibrium studies. The adaptive numerical scheme in the radial direction improves considerably the accuracy of the equilibrium solution. The decomposition with independent solutions effectively reduces the matrix size in solving the magnetohydrodynamic equilibrium problem. The reduction of the matrix size is about an order of magnitude as compared with the conventional radially grid-based numerical schemes. Also, in this ATEQ numerical scheme, no matter how accuracy in the radial direction is imposed, the size of matrices basically does not change. The small matrix size scheme gives ATEQ more flexibility to address the requirement of the number of Fourier components in the poloidal direction in tough equilibrium problems. These two unique features, the adaptive shooting and small matrix size, make ATEQ useful to improve tokamak equilibrium solutions.

Funder

US DOE, Office of Fusion Science

Publisher

AIP Publishing

Subject

Condensed Matter Physics

Reference40 articles.

1. H. Grad and H. Rubin , in Proceedings of 2nd International Conference on the Peaceful Uses of Atomic Energy ( United Nations, Geneva, 1958), Vol. 31, pp. 190–197.

2. The advanced tokamak path to a compact net electric fusion pilot plant

3. Stability and dynamics of the edge pedestal in the low collisionality regime: physics mechanisms for steady-state ELM-free operation

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