In the frame of the High-Luminosity Large Hadron Collider construction and Future Circular Collider development program, the magnetic field in the accelerator dipole magnets is being enhanced to 11 T, and 15 T to 16 T level, respectively. Advanced Nb3Sn superconductors with a non-copper critical current density exceeding 2500 A mm−2 at 4.2 K and 12 T, are being developed using the Restacked-Rod-Process (RRP) and Powder-In-Tube (PIT) wire technologies. However, since Nb3Sn is extremely brittle, it is a significant challenge to construct the high-field dipole magnets with such very strain-susceptible superconductor. The high-level of stress acting on the wide face of the Rutherford cables in the coils of 120 MPa to 200 MPa generated by the Lo...
For high energy physics applications superconducting cables are subjected to large stresses and high...
High-performance Nb$_3$Sn superconducting wires have become one of the key technologies for the deve...
In the framework of future LHC upgrades using Nb(3)Sn magnets, supported in part by the US LHC Accel...
In order to achieve higher magnetic fields and/or larger magnet apertures, next generation accelerat...
For the LHC upgrade, CERN has launched a large program to develop next generation accelerator magnet...
In the framework of the development of an experimental 10 T Nb3Sn dipole coil for the LHC at CERN th...
The measured critical current reduction in Nb3Sn Rutherford cables under magnet-relevant transverse ...
The measured critical current reduction in Nb3Sn Rutherford cables under magnet-relevant transverse ...
Results obtained on 18-strand 10-mm-wide cable sample based on a 1-mm-diameter powder-in-tube (PIT) ...
Abstract. Fermilab is developing high field superconducting magnets for future accelerators based on...
In the framework of the Future Circular Collider design study for a 100 TeV circular collider, 16 T ...
Nb3Sn Rutherford cables are used in CERN’s superconducting 11 T dipole and MQXF quadrupole magnets, ...
High-performance Nb3Sn conductors are intended to be used in large-scale magnets like the Internatio...
The Large Hadron Collider (LHC) is a two-ring, superconducting synchrotron accelerator and collider ...
The critical current degradation of a few sample Rutherford-type Nb3Sn cables is investigated as a f...
For high energy physics applications superconducting cables are subjected to large stresses and high...
High-performance Nb$_3$Sn superconducting wires have become one of the key technologies for the deve...
In the framework of future LHC upgrades using Nb(3)Sn magnets, supported in part by the US LHC Accel...
In order to achieve higher magnetic fields and/or larger magnet apertures, next generation accelerat...
For the LHC upgrade, CERN has launched a large program to develop next generation accelerator magnet...
In the framework of the development of an experimental 10 T Nb3Sn dipole coil for the LHC at CERN th...
The measured critical current reduction in Nb3Sn Rutherford cables under magnet-relevant transverse ...
The measured critical current reduction in Nb3Sn Rutherford cables under magnet-relevant transverse ...
Results obtained on 18-strand 10-mm-wide cable sample based on a 1-mm-diameter powder-in-tube (PIT) ...
Abstract. Fermilab is developing high field superconducting magnets for future accelerators based on...
In the framework of the Future Circular Collider design study for a 100 TeV circular collider, 16 T ...
Nb3Sn Rutherford cables are used in CERN’s superconducting 11 T dipole and MQXF quadrupole magnets, ...
High-performance Nb3Sn conductors are intended to be used in large-scale magnets like the Internatio...
The Large Hadron Collider (LHC) is a two-ring, superconducting synchrotron accelerator and collider ...
The critical current degradation of a few sample Rutherford-type Nb3Sn cables is investigated as a f...
For high energy physics applications superconducting cables are subjected to large stresses and high...
High-performance Nb$_3$Sn superconducting wires have become one of the key technologies for the deve...
In the framework of future LHC upgrades using Nb(3)Sn magnets, supported in part by the US LHC Accel...