In high field magnet applications, Nb$_{3}$Sn coils undergo a heat treatment step after winding. During this stage, coils radially expand and longitudinally contract due to the Nb$_{3}$Sn phase change. In order to prevent residual strain from altering superconducting performances, the tooling must provide the adequate space for these dimensional changes. The aim of this paper is to understand the behavior of cable dimensions during heat treatment and to provide estimates of the space to be accommodated in the tooling for coil expansion and contraction. This paper summarizes measurements of dimensional changes on strands, single Rutherford cables, cable stacks, and coils performed between 2013 and 2015. These samples and coils have been perf...
In order to achieve higher magnetic fields and/or larger magnet apertures, next generation accelerat...
The luminosity upgrade of the Large Hadron Collider (HL-LHC) requires the development of new type of...
Accelerator magnets that can reach magnetic fields well beyond the Nb-Ti performance limits are pres...
In high field magnet applications, Nb3Sn coils undergo a heat treatment step after winding. During t...
In Nb$_{3}$Sn accelerator magnets, non-superconducting precursor cables are wound into their final c...
International audienceIn the continuity of the Large Hadron Collider (LHC) large-scale projects are ...
During the heat treatment of Nb{sub 3}Sn coils the conductor material properties change significantl...
International audienceIn order to improve the current performance of the Large Hadron Collider (HL-L...
The high field superconducting magnets required for ongoing and planned upgrades to the Large Hadron...
Fermilab is developing high field superconducting dipole magnets based on Nb/sub 3/Sn for a post-LHC...
As part of the Large Hadron Collider Luminosity upgrade (HiLumi-LHC) program, the US LARP collaborat...
The High Luminosity-LHC (HL-LHC) project and the Future Circular Collider study (FCC) require highe...
International audienceIn order to develop future particle colliders such as the HiLumi - Large Hadro...
The quadrupole and dipole magnets for the LHC High Luminosity (HL-LHC) upgrade will be based on Nb$_...
The Nb$_3$Sn technology plays a crucial role in developing high-field superconducting magnets. The n...
In order to achieve higher magnetic fields and/or larger magnet apertures, next generation accelerat...
The luminosity upgrade of the Large Hadron Collider (HL-LHC) requires the development of new type of...
Accelerator magnets that can reach magnetic fields well beyond the Nb-Ti performance limits are pres...
In high field magnet applications, Nb3Sn coils undergo a heat treatment step after winding. During t...
In Nb$_{3}$Sn accelerator magnets, non-superconducting precursor cables are wound into their final c...
International audienceIn the continuity of the Large Hadron Collider (LHC) large-scale projects are ...
During the heat treatment of Nb{sub 3}Sn coils the conductor material properties change significantl...
International audienceIn order to improve the current performance of the Large Hadron Collider (HL-L...
The high field superconducting magnets required for ongoing and planned upgrades to the Large Hadron...
Fermilab is developing high field superconducting dipole magnets based on Nb/sub 3/Sn for a post-LHC...
As part of the Large Hadron Collider Luminosity upgrade (HiLumi-LHC) program, the US LARP collaborat...
The High Luminosity-LHC (HL-LHC) project and the Future Circular Collider study (FCC) require highe...
International audienceIn order to develop future particle colliders such as the HiLumi - Large Hadro...
The quadrupole and dipole magnets for the LHC High Luminosity (HL-LHC) upgrade will be based on Nb$_...
The Nb$_3$Sn technology plays a crucial role in developing high-field superconducting magnets. The n...
In order to achieve higher magnetic fields and/or larger magnet apertures, next generation accelerat...
The luminosity upgrade of the Large Hadron Collider (HL-LHC) requires the development of new type of...
Accelerator magnets that can reach magnetic fields well beyond the Nb-Ti performance limits are pres...