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Numerical modelling of dynamic resistance in high-temperature superconducting coated-conductor wires

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TLDR
In this paper, a 2D numerical model based on the finite element method and implementing the H -formulation is used to calculate the dynamic resistance and total AC loss in a coated-conductor HTS wire carrying an arbitrary DC transport current and exposed to background AC magnetic fields up to 100 mT.
Abstract
© 2018 IOP Publishing Ltd. The use of superconducting wire within AC power systems is complicated by the dissipative interactions that occur when a superconductor is exposed to an alternating current and/or magnetic field, giving rise to a superconducting AC loss caused by the motion of vortices within the superconducting material. When a superconductor is exposed to an alternating field whilst carrying a constant DC transport current, a DC electrical resistance can be observed, commonly referred to as 'dynamic resistance.' Dynamic resistance is relevant to many potential higherature superconducting (HTS) applications and has been identified as critical to understanding the operating mechanism of HTS flux pump devices. In this paper, a 2D numerical model based on the finite-element method and implementing the H -formulation is used to calculate the dynamic resistance and total AC loss in a coated-conductor HTS wire carrying an arbitrary DC transport current and exposed to background AC magnetic fields up to 100 mT. The measured angular dependence of the superconducting properties of the wire are used as input data, and the model is validated using experimental data for magnetic fields perpendicular to the plane of the wire, as well as at angles of 30° and 60° to this axis. The model is used to obtain insights into the characteristics of such dynamic resistance, including its relationship with the applied current and field, the wire's superconducting properties, the threshold field above which dynamic resistance is generated and the flux-flow resistance that arises when the total driven transport current exceeds the field-dependent critical current, I c( B ), of the wire. It is shown that the dynamic resistance can be mostly determined by the perpendicular field component with subtle differences determined by the angular dependence of the superconducting properties of the wire. The dynamic resistance in parallel fields is essentially negligible until J c is exceeded and flux-flow resistance occurs.

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Journal ArticleDOI

Finite-element modelling of no-insulation HTS coils using rotated anisotropic resistivity

TL;DR: In this article, a 2D axially symmetric model of a partially insulated no-insulation (NI) coil is presented, which captures all the inherent electromagnetic properties of these coils, including axial vs radial current flow and critical current suppression.
Journal ArticleDOI

Modeling of Stator Versus Magnet Width Effects in High- $T_c$ Superconducting Dynamos

TL;DR: In this paper, the effect of increasing the stator width through using recent advances in modeling superconducting dynamos has been explored, and it has been shown that given enough space in the stators, the total sum of circulating and transport currents do not drive the full width of the stor into the flux-flow regime.
Journal ArticleDOI

Modeling of Airgap Influence on DC Voltage Generation in a Dynamo-Type Flux Pump

TL;DR: In this article, an efficient numerical model based on Minimum Electromagnetic Entropy Production (MEMEP) method was employed to analyze the performance of the flux pump in open-circuit mode.
Journal ArticleDOI

15% reduction in AC loss of a 3-phase 1 MVA HTS transformer by exploiting asymmetric conductor critical current

TL;DR: In this paper, the authors report the modelled influence of real conductor critical current asymmetry on the AC loss characteristics of a 1 MVA HTS transformer and a stand-alone coil having the same geometrical and electrical parameters as the low voltage winding of the transformer.
References
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TL;DR: Analytical results are at variance with the critical-state model for longitudinal geometry and explain numerous experiments in a natural way without the assumption of a surface barrier.
Journal ArticleDOI

Numerical solution of critical state in superconductivity by finite element software

TL;DR: In this paper, a numerical method is proposed to analyse the electromagnetic behavior of systems including high-temperature superconductors (HTSCs) in time-varying external fields and superconducting cables carrying AC transport current.
Journal ArticleDOI

Development of an edge-element model for AC loss computation of high-temperature superconductors

TL;DR: In this article, a new numerical model for computing the current density, field distributions and AC losses in superconductors is presented, based on the direct magnetic field H formulation without the use of vector and scalar potentials.
Journal ArticleDOI

Magnetic properties and AC-losses of superconductors with power law current-voltage characteristics

TL;DR: In this paper, a theory of magnetic properties and AC-losses in superconductors with smooth current-voltage characteristics is proposed, which is applied to supercondors with a power law characteristic, E ≈ jα.
Journal ArticleDOI

Computation of Losses in HTS Under the Action of Varying Magnetic Fields and Currents

TL;DR: This paper presents a literature review of the methods for computing ac losses in HTS tapes, wires, and devices and provides an estimation of the losses occurring in a variety of power applications.
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