High critical current density (Jc) Nb3Sn conductor is the best candidate for next generation high field (>10 T) accelerator magnets. Although very promising, state of the art high-Jc Nb 3Sn strands suffer magneto-thermal instabilities that can severely limit the strand performance. Recently it has been shown that at 1.9 K the self field instability is the dominating mechanism that limits the performance of strands with a low <10) Residual Resistivity Ratio (RRR) of the stabilizing copper. In this paper the self-field instability is investigated in high-J c Nb3Sn strands with high RRR. At CERN several state of the art Rod Re-Stack Process (RRP) and Powder In Tube (PIT)Nb3Sn strands have been tested at 4.2 K and 1.9 K to study the effects on strand stability of: RRR, strand diameter and, strand impregnation with stycast. The experimental results are reported and discussed. A new 2-D finite element model for simulating magneto-thermal instabilities and its preliminary results are also presented. The model, which describes the whole development of the flux jump in the strand cross section taking into account the heat and current diffusion in the stabilizing copper, is in good agreement with the experimental data.

Self Field Instability in High-J(c) Nb3Sn Strands With High Copper Residual Resistivity Ratio / B. Bordini, L. Rossi. - In: IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY. - ISSN 1051-8223. - 19:3(2009), pp. 5153117.2470-5153117.2476.

Self Field Instability in High-J(c) Nb3Sn Strands With High Copper Residual Resistivity Ratio

L. Rossi
2009

Abstract

High critical current density (Jc) Nb3Sn conductor is the best candidate for next generation high field (>10 T) accelerator magnets. Although very promising, state of the art high-Jc Nb 3Sn strands suffer magneto-thermal instabilities that can severely limit the strand performance. Recently it has been shown that at 1.9 K the self field instability is the dominating mechanism that limits the performance of strands with a low <10) Residual Resistivity Ratio (RRR) of the stabilizing copper. In this paper the self-field instability is investigated in high-J c Nb3Sn strands with high RRR. At CERN several state of the art Rod Re-Stack Process (RRP) and Powder In Tube (PIT)Nb3Sn strands have been tested at 4.2 K and 1.9 K to study the effects on strand stability of: RRR, strand diameter and, strand impregnation with stycast. The experimental results are reported and discussed. A new 2-D finite element model for simulating magneto-thermal instabilities and its preliminary results are also presented. The model, which describes the whole development of the flux jump in the strand cross section taking into account the heat and current diffusion in the stabilizing copper, is in good agreement with the experimental data.
English
Instability; Magnet; Nb; 3; Sn; Superconductor
Settore FIS/01 - Fisica Sperimentale
Articolo
Esperti anonimi
Pubblicazione scientifica
2009
19
3
5153117
2470
2476
7
Pubblicato
Periodico con rilevanza internazionale
scopus
crossref
Aderisco
info:eu-repo/semantics/article
Self Field Instability in High-J(c) Nb3Sn Strands With High Copper Residual Resistivity Ratio / B. Bordini, L. Rossi. - In: IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY. - ISSN 1051-8223. - 19:3(2009), pp. 5153117.2470-5153117.2476.
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Prodotti della ricerca::01 - Articolo su periodico
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262
Article (author)
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B. Bordini, L. Rossi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/664140
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