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  4. Evaluation of Young's modulus of MgB2 filaments in composite wires for the superconducting links for the high-luminosity LHC upgrade
 
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research article

Evaluation of Young's modulus of MgB2 filaments in composite wires for the superconducting links for the high-luminosity LHC upgrade

Sugano, Michinaka
•
Ballarino, Amalia
•
Bártová, Barbora  
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2016
Superconductor Science and Technology

MgB2 wire is a promising superconductor for the superconducting links for the high-luminosity upgrade of the large Hadron collider at CERN. The mechanical properties of MgB2 must be fully quantified for the cable design, and in this study, we evaluate the Young’s modulus of MgB2 filaments in wires with a practical level of critical current. The Young’s moduli of MgB2 filaments by two different processes, in situ and ex situ, were compared. Two different evaluation methods were applied to an in situ MgB2 wire, a single-fiber tensile test and a tensile test after removing Monel. In addition, the Young’s modulus of the few-micron-thick Nb–Ni reaction layer in an ex situ processed wire was evaluated using a nanoindentation testing technique to improve the accuracy of analysis based on the rule of mixtures. The Young’s moduli of the in situ and ex situ MgB2 wires were in the range of 76–97 GPa and no distinct difference depending on the fabrication process was found.

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Type
research article
DOI
10.1088/0953-2048/29/2/025009
Web of Science ID

WOS:000371969400018

Author(s)
Sugano, Michinaka
•
Ballarino, Amalia
•
Bártová, Barbora  
•
Bjoerstad, Roger
•
Gerardin, Alexandre
•
Scheuerlein, Christian
Date Issued

2016

Publisher

Institute of Physics

Published in
Superconductor Science and Technology
Volume

29

Article Number

025009

Subjects

MgB2

•

Young’s modulus

•

single fiber tensile test

•

nanoindentation

•

superconduct- ing link

Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
IIE  
Available on Infoscience
March 16, 2016
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/124979
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