Cargando…

Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties

Future applications requiring high magnetic fields, such as the proposed Future Circular Collider, demand a substantially higher critical current density, $J_c$, at fields ≥16 T than is presently available in any commercial strand, so there is a strong effort to develop new routes to higher $J_c$ Nb...

Descripción completa

Detalles Bibliográficos
Autores principales: Segal, Christopher, Barth, Christian, Falorio, Iole, Carlón Zurita, Alejandro, Ballarino, Amalia, Chaud, Xavier, Tarantini, Chiara, Lee, Peter J, Larbalestier, David C
Lenguaje:eng
Publicado: IOP 2020
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1742-6596/1559/1/012062
http://cds.cern.ch/record/2725896
_version_ 1780966149843845120
author Segal, Christopher
Barth, Christian
Falorio, Iole
Carlón Zurita, Alejandro
Ballarino, Amalia
Chaud, Xavier
Tarantini, Chiara
Lee, Peter J
Larbalestier, David C
author_facet Segal, Christopher
Barth, Christian
Falorio, Iole
Carlón Zurita, Alejandro
Ballarino, Amalia
Chaud, Xavier
Tarantini, Chiara
Lee, Peter J
Larbalestier, David C
author_sort Segal, Christopher
collection CERN
description Future applications requiring high magnetic fields, such as the proposed Future Circular Collider, demand a substantially higher critical current density, $J_c$, at fields ≥16 T than is presently available in any commercial strand, so there is a strong effort to develop new routes to higher $J_c$ Nb$_3$Sn. As a consequence, evaluating the irreversibility field ($H_{irr}$) of any new conductor to ensure reliable performance at these higher magnetic fields becomes essential. To predict the irreversibility field for Nb$_3$Sn wires, critical current measurements, $I_c$, are commonly performed in the 12-15 T range and the Kramer extrapolation is used to predict higher field properties. The Kramer extrapolation typically models the contribution only for sparse grain boundary pinning, yet Nb3Sn wires rely on a high density of grain boundaries to provide the flux pinning that enables their high critical current density. However, whole-field range VSM measurements up to 30 T recently showed for Nb$_3$Sn RRP® wires that the field dependence of the pinning force curve significantly deviates from the typical grain boundary shape, leading to a 1-2 T overestimation of $H_{irr}$ when extrapolated from the typical mid-field data taken only up to about 15 T. In this work we characterized a variety of both RRP® and PIT Nb3Sn wires by transport measurements up to 29 T at the Laboratoire National des Champs Magnétiques Intenses (LNCMI), part of the European Magnetic Field Laboratory in Grenoble, to verify whether or not such overestimation is related to the measurement technique and whether or not it is a common feature across different designs. Indeed we also found that when measured in transport the 12-15 T Kramer extrapolation overestimates the actual $H_{irr}$ in both types of conductor with an inaccuracy of up to 1.6 T, confirming that high field characterization is a necessary tool to evaluate the actual high field performance of each Nb3Sn wire.
id oai-inspirehep.net-1803462
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
publisher IOP
record_format invenio
spelling oai-inspirehep.net-18034622021-02-09T10:04:50Zdoi:10.1088/1742-6596/1559/1/012062http://cds.cern.ch/record/2725896engSegal, ChristopherBarth, ChristianFalorio, IoleCarlón Zurita, AlejandroBallarino, AmaliaChaud, XavierTarantini, ChiaraLee, Peter JLarbalestier, David CEvidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn propertiesAccelerators and Storage RingsFuture applications requiring high magnetic fields, such as the proposed Future Circular Collider, demand a substantially higher critical current density, $J_c$, at fields ≥16 T than is presently available in any commercial strand, so there is a strong effort to develop new routes to higher $J_c$ Nb$_3$Sn. As a consequence, evaluating the irreversibility field ($H_{irr}$) of any new conductor to ensure reliable performance at these higher magnetic fields becomes essential. To predict the irreversibility field for Nb$_3$Sn wires, critical current measurements, $I_c$, are commonly performed in the 12-15 T range and the Kramer extrapolation is used to predict higher field properties. The Kramer extrapolation typically models the contribution only for sparse grain boundary pinning, yet Nb3Sn wires rely on a high density of grain boundaries to provide the flux pinning that enables their high critical current density. However, whole-field range VSM measurements up to 30 T recently showed for Nb$_3$Sn RRP® wires that the field dependence of the pinning force curve significantly deviates from the typical grain boundary shape, leading to a 1-2 T overestimation of $H_{irr}$ when extrapolated from the typical mid-field data taken only up to about 15 T. In this work we characterized a variety of both RRP® and PIT Nb3Sn wires by transport measurements up to 29 T at the Laboratoire National des Champs Magnétiques Intenses (LNCMI), part of the European Magnetic Field Laboratory in Grenoble, to verify whether or not such overestimation is related to the measurement technique and whether or not it is a common feature across different designs. Indeed we also found that when measured in transport the 12-15 T Kramer extrapolation overestimates the actual $H_{irr}$ in both types of conductor with an inaccuracy of up to 1.6 T, confirming that high field characterization is a necessary tool to evaluate the actual high field performance of each Nb3Sn wire.IOPoai:inspirehep.net:18034622020
spellingShingle Accelerators and Storage Rings
Segal, Christopher
Barth, Christian
Falorio, Iole
Carlón Zurita, Alejandro
Ballarino, Amalia
Chaud, Xavier
Tarantini, Chiara
Lee, Peter J
Larbalestier, David C
Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title_full Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title_fullStr Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title_full_unstemmed Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title_short Evidence of Kramer extrapolation inaccuracy for predicting high field Nb$_3$Sn properties
title_sort evidence of kramer extrapolation inaccuracy for predicting high field nb$_3$sn properties
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1088/1742-6596/1559/1/012062
http://cds.cern.ch/record/2725896
work_keys_str_mv AT segalchristopher evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT barthchristian evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT falorioiole evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT carlonzuritaalejandro evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT ballarinoamalia evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT chaudxavier evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT tarantinichiara evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT leepeterj evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties
AT larbalestierdavidc evidenceofkramerextrapolationinaccuracyforpredictinghighfieldnb3snproperties