Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field

The ENEA superconductivity laboratory developed a novel design for Cable-in-Conduit Conductors (CICCs) comprised of stacks of 2nd-generation REBCO coated conductors. In its original version, the cable was made up of 150 HTS tapes distributed in five slots, twisted along an aluminum core. In this wor...

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Main Authors: Giordano Tomassetti, Gianluca de Marzi, Giuseppe Celentano, Francesco Rizzo, Andrea Augieri, Antonio della Corte
Format: Article
Language:English
Published: Hindawi Limited 2018-01-01
Series:Advances in Condensed Matter Physics
Online Access:http://dx.doi.org/10.1155/2018/9735795
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spelling doaj-653226ef1bc64e15ba536ddd2042250b2020-11-24T22:36:31ZengHindawi LimitedAdvances in Condensed Matter Physics1687-81081687-81242018-01-01201810.1155/2018/97357959735795Pareto-Optimization of HTS CICC for High-Current Applications in Self-FieldGiordano Tomassetti0Gianluca de Marzi1Giuseppe Celentano2Francesco Rizzo3Andrea Augieri4Antonio della Corte5ENEA C. R., 00044 Frascati, ItalyENEA C. R., 00044 Frascati, ItalyENEA C. R., 00044 Frascati, ItalyENEA C. R., 00044 Frascati, ItalyENEA C. R., 00044 Frascati, ItalyENEA C. R., 00044 Frascati, ItalyThe ENEA superconductivity laboratory developed a novel design for Cable-in-Conduit Conductors (CICCs) comprised of stacks of 2nd-generation REBCO coated conductors. In its original version, the cable was made up of 150 HTS tapes distributed in five slots, twisted along an aluminum core. In this work, taking advantage of a 2D finite element model, able to estimate the cable’s current distribution in the cross-section, a multiobjective optimization procedure was implemented. The aim of optimization was to simultaneously maximize both engineering current density and total current flowing inside the tapes when operating in self-field, by varying the cross-section layout. Since the optimization process involved both integer and real geometrical variables, the choice of an evolutionary search algorithm was strictly necessary. The use of an evolutionary algorithm in the frame of a multiple objective optimization made it an obliged choice to numerically approach the problem using a nonstandard fast-converging optimization algorithm. By means of this algorithm, the Pareto frontiers for the different configurations were calculated, providing a powerful tool for the designer to achieve the desired preliminary operating conditions in terms of engineering current density and/or total current, depending on the specific application field, that is, power transmission cable and bus bar systems.http://dx.doi.org/10.1155/2018/9735795
collection DOAJ
language English
format Article
sources DOAJ
author Giordano Tomassetti
Gianluca de Marzi
Giuseppe Celentano
Francesco Rizzo
Andrea Augieri
Antonio della Corte
spellingShingle Giordano Tomassetti
Gianluca de Marzi
Giuseppe Celentano
Francesco Rizzo
Andrea Augieri
Antonio della Corte
Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
Advances in Condensed Matter Physics
author_facet Giordano Tomassetti
Gianluca de Marzi
Giuseppe Celentano
Francesco Rizzo
Andrea Augieri
Antonio della Corte
author_sort Giordano Tomassetti
title Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
title_short Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
title_full Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
title_fullStr Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
title_full_unstemmed Pareto-Optimization of HTS CICC for High-Current Applications in Self-Field
title_sort pareto-optimization of hts cicc for high-current applications in self-field
publisher Hindawi Limited
series Advances in Condensed Matter Physics
issn 1687-8108
1687-8124
publishDate 2018-01-01
description The ENEA superconductivity laboratory developed a novel design for Cable-in-Conduit Conductors (CICCs) comprised of stacks of 2nd-generation REBCO coated conductors. In its original version, the cable was made up of 150 HTS tapes distributed in five slots, twisted along an aluminum core. In this work, taking advantage of a 2D finite element model, able to estimate the cable’s current distribution in the cross-section, a multiobjective optimization procedure was implemented. The aim of optimization was to simultaneously maximize both engineering current density and total current flowing inside the tapes when operating in self-field, by varying the cross-section layout. Since the optimization process involved both integer and real geometrical variables, the choice of an evolutionary search algorithm was strictly necessary. The use of an evolutionary algorithm in the frame of a multiple objective optimization made it an obliged choice to numerically approach the problem using a nonstandard fast-converging optimization algorithm. By means of this algorithm, the Pareto frontiers for the different configurations were calculated, providing a powerful tool for the designer to achieve the desired preliminary operating conditions in terms of engineering current density and/or total current, depending on the specific application field, that is, power transmission cable and bus bar systems.
url http://dx.doi.org/10.1155/2018/9735795
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