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Integrating Novel Stellarator Single-Stage Optimization Algorithms to Design the Columbia Stellarator Experiment

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arxiv 2409.05261 v1 pith:ROLCUK5L submitted 2024-09-09 physics.plasm-ph

classification physics.plasm-ph
keywords coilsplasmacolumbiastellaratorexperimentoptimizationsingle-stagedesign
verification ladder T0 review T1 audit T2 compute T3 formal
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The Columbia Stellarator eXperiment (CSX), currently being designed at Columbia University, aims to test theoretical predictions related to QA plasma behavior, and to pioneer the construction of an optimized stellarator using three-dimensional, non-insulated high-temperature superconducting (NI-HTS) coils. The magnetic configuration is generated by a combination of two circular planar poloidal field (PF) coils and two 3D-shaped interlinked (IL) coils, with the possibility to add windowpane coils to enhance shaping and experimental flexibility. The PF coils and vacuum vessel are repurposed from the former Columbia Non-Neutral Torus (CNT) experiment, while the IL coils will be custom-wound in-house using NI-HTS tapes. To obtain a plasma shape that meets the physics objectives with a limited number of coils, novel single-stage optimization techniques are employed, optimizing both the plasma and coils concurrently, in particular targeting a tight aspect ratio QA plasma and minimized strain on the HTS tape. Despite the increased complexity due to the expanded degrees of freedom, these methods successfully identify optimized plasma geometries that can be realized by coils meeting engineering specifications. This paper discusses the derivation of the constraints and objectives specific to CSX, and describe how two recently developed single-stage optimization methodologies are applied to the design of CSX. A set of selected configurations for CSX is then described in detail.

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Cited by 2 Pith papers

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

  1. Optimization of passive superconductors for shaping stellarator magnetic fields

    physics.plasm-ph 2025-01 conditional novelty 7.0 of 10

    First joint optimization of passive superconducting coil arrays and background fields produces low-error magnetic field solutions for four stellarators.

  2. Reactor-scale stellarators with force and torque minimized dipole coils

    physics.plasm-ph 2024-12 conditional novelty 7.0 of 10

    Jointly optimizing movable planar dipole arrays with force and torque penalties produces reactor-scale stellarator coil sets with tolerable loads and simple TF coils.

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