Magneto-Thermal Thin Shell Approximation for 3D Finite Element Analysis of No-Insulation Coils

Fuente: arXiv
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Main Authors: Schnaubelt, Erik, Atalay, Sina, Wozniak, Mariusz, Dular, Julien, Geuzaine, Christophe, Vanderheyden, Benoît, Marsic, Nicolas, Verweij, Arjan, Schöps, Sebastian
Format: Preprint
Published: 2023
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author Schnaubelt, Erik
Atalay, Sina
Wozniak, Mariusz
Dular, Julien
Geuzaine, Christophe
Vanderheyden, Benoît
Marsic, Nicolas
Verweij, Arjan
Schöps, Sebastian
author_facet Schnaubelt, Erik
Atalay, Sina
Wozniak, Mariusz
Dular, Julien
Geuzaine, Christophe
Vanderheyden, Benoît
Marsic, Nicolas
Verweij, Arjan
Schöps, Sebastian
contents For finite element (FE) analysis of no-insulation (NI) high-temperature superconducting (HTS) pancake coils, the high aspect ratio of the turn-to-turn contact layer (T2TCL) leads to meshing difficulties which result in either poor quality mesh elements resulting in a decrease of the solution accuracy or a high number of degrees of freedom. We proposed to mitigate this issue by collapsing the T2TCL volume into a surface and using a so-called thin shell approximation (TSA). Previously, two TSA have been introduced, one to solve the heat equation and the other for an $\vec{H}-ϕ$ magnetodynamic formulation. In this work, we propose to combine the magnetodynamic and thermal TSA to create a coupled magneto-thermal TSA for three-dimensional FE analysis. Particular attention is paid to the detailed derivation of the coupling terms. In the context of NI HTS pancake coils, the TSA represents the electric and thermal contact resistance of the T2TCL. For the HTS coated conductor (CC) itself, an anisotropic homogenization is used which represents its multi-layered structure. In axial and azimuthal direction, it resolves the current sharing between the HTS and other layers of the CC. The coupled TSA formulation is verified against a reference model with volumetric T2TCL. The coupled TSA is shown to significantly reduce the solution time as well as the manual effort required for high-quality meshes of the T2TCL. The implementation is open-source and a reference implementation is made publicly available.
format Preprint
id arxiv_https___arxiv_org_abs_2310_03138
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Magneto-Thermal Thin Shell Approximation for 3D Finite Element Analysis of No-Insulation Coils
Schnaubelt, Erik
Atalay, Sina
Wozniak, Mariusz
Dular, Julien
Geuzaine, Christophe
Vanderheyden, Benoît
Marsic, Nicolas
Verweij, Arjan
Schöps, Sebastian
Accelerator Physics
Superconductivity
Computational Engineering, Finance, and Science
For finite element (FE) analysis of no-insulation (NI) high-temperature superconducting (HTS) pancake coils, the high aspect ratio of the turn-to-turn contact layer (T2TCL) leads to meshing difficulties which result in either poor quality mesh elements resulting in a decrease of the solution accuracy or a high number of degrees of freedom. We proposed to mitigate this issue by collapsing the T2TCL volume into a surface and using a so-called thin shell approximation (TSA). Previously, two TSA have been introduced, one to solve the heat equation and the other for an $\vec{H}-ϕ$ magnetodynamic formulation. In this work, we propose to combine the magnetodynamic and thermal TSA to create a coupled magneto-thermal TSA for three-dimensional FE analysis. Particular attention is paid to the detailed derivation of the coupling terms. In the context of NI HTS pancake coils, the TSA represents the electric and thermal contact resistance of the T2TCL. For the HTS coated conductor (CC) itself, an anisotropic homogenization is used which represents its multi-layered structure. In axial and azimuthal direction, it resolves the current sharing between the HTS and other layers of the CC. The coupled TSA formulation is verified against a reference model with volumetric T2TCL. The coupled TSA is shown to significantly reduce the solution time as well as the manual effort required for high-quality meshes of the T2TCL. The implementation is open-source and a reference implementation is made publicly available.
title Magneto-Thermal Thin Shell Approximation for 3D Finite Element Analysis of No-Insulation Coils
topic Accelerator Physics
Superconductivity
Computational Engineering, Finance, and Science
url https://arxiv.org/abs/2310.03138