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Efficient calculation of self magnetic field, self-force, and self-inductance for electromagnetic coils. II. Rectangular cross-section

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arxiv 2310.12087 v1 pith:3DSZOKYI submitted 2023-10-18 physics.app-ph physics.acc-phphysics.class-phphysics.comp-phphysics.plasm-ph

classification physics.app-phphysics.acc-phphysics.class-phphysics.comp-phphysics.plasm-ph
keywords coilsfieldmagneticmodelcalculationscoilcomputedcross-section
verification ladder T0 review T1 audit T2 compute T3 formal
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For designing high-field electromagnets, the Lorentz force on coils must be computed to ensure a support structure is feasible, and the inductance should be computed to evaluate the stored energy. Also, the magnetic field and its variation inside the conductor is of interest for computing stress and strain, and due to superconducting quench limits. For these force, inductance, energy, and internal field calculations, the coils cannot be naively approximated as infinitesimally thin filaments due to divergences when the source and evaluation points coincide, so more computationally demanding calculations are usually required, resolving the finite cross-section of the conductors. Here, we present a new alternative method that enables the internal magnetic field vector, self-force, and self-inductance to be computed rapidly and accurately within a 1D filament model. The method is applicable to coils for which the curve center-line can have general noncircular shape, as long as the conductor width is small compared to the radius of curvature. This paper extends a previous calculation for circular-cross-section conductors [Hurwitz et al, arXiv:2310.09313 (2023)] to consider the case of rectangular cross-section. The reduced model is derived by rigorous analysis of the singularity, regularizing the filament integrals such that they match the true high-dimensional integrals at high coil aspect ratio. The new filament model exactly recovers analytic results for a circular coil, and is shown to accurately reproduce full finite-cross-section calculations for a non-planar coil of a stellarator magnetic fusion device. Due to the efficiency of the model here, it is well suited for use inside design optimization.

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Cited by 3 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.

  3. ThinCurr: An open-source 3D thin-wall eddy current modeling code for the analysis of large-scale systems of conducting structures

    physics.plasm-ph 2024-12 conditional novelty 6.0 of 10

    ThinCurr is an open-source boundary-element code that models thin-wall eddy currents with HODLR-compressed inductance matrices and automatic homology-based hole detection, verified against VALEN and Ansys.

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