A total of 44 CERN designed cryogenic electrical feedboxes are needed to power the LHC superconducting magnets. The feedboxes include more than 1000 superconducting circuits fed by high temperature superconductor and conventional current leads ranging from 120 A to 13 kA. In addition to providing the electrical current to the superconducting circuits, they also ensure specific mechanical and cryogenic functions for the LHC. The paper focuses on the main design aspects and related production operations and gives an overview of specific technologies employed. Results of the commissioning of the feedboxes of the first LHC sectors are presented
The Large Hadron Collider (LHC) will be equipped with about 8000 superconducting magnets. Some 3380 ...
The Large Hadron Collider has (LHC) 1572 superconducting circuits which are distributed along the ei...
Feeding superconducting magnets with reliable low-loss devices is a key issue for any cryo-electrica...
A total of 44 CERN designed cryogenic electrical feedboxes are needed to power the LHC superconducti...
The powering of the LHC superconducting magnets relies on more than 3000 current leads transporting ...
Powering the superconducting magnets of the LHC arcs and long straight sections is performed with mo...
The Large Hadron Collider (LHC) now under commissioning at CERN is a 26.7 km collider based on sever...
The Electrical Distribution Feed Box (DFBS) is a 4.5 K saturated liquid helium cryostat constructed ...
A 107-m long superconducting magnet string representing a full-cell of the LHC machine was designed ...
CERN's major project, the Large Hadron Collider (LHC), has moved to an implementation phase with mac...
The cryogenic system of the Large Hadron Collider (LHC) will be, upon its completion in 2006, the la...
Among the different applications of the emerging High Temperature Superconducting (HTS) technology, ...
The LHC current lead project is now entering into the stage of procurement of the components for int...
The Large Hadron Collider (LHC) presently under construction at CERN relies on superconducting techn...
The Large Hadron Collider (LHC) project is the largest plant based on superconductivity and cryogeni...
The Large Hadron Collider (LHC) will be equipped with about 8000 superconducting magnets. Some 3380 ...
The Large Hadron Collider has (LHC) 1572 superconducting circuits which are distributed along the ei...
Feeding superconducting magnets with reliable low-loss devices is a key issue for any cryo-electrica...
A total of 44 CERN designed cryogenic electrical feedboxes are needed to power the LHC superconducti...
The powering of the LHC superconducting magnets relies on more than 3000 current leads transporting ...
Powering the superconducting magnets of the LHC arcs and long straight sections is performed with mo...
The Large Hadron Collider (LHC) now under commissioning at CERN is a 26.7 km collider based on sever...
The Electrical Distribution Feed Box (DFBS) is a 4.5 K saturated liquid helium cryostat constructed ...
A 107-m long superconducting magnet string representing a full-cell of the LHC machine was designed ...
CERN's major project, the Large Hadron Collider (LHC), has moved to an implementation phase with mac...
The cryogenic system of the Large Hadron Collider (LHC) will be, upon its completion in 2006, the la...
Among the different applications of the emerging High Temperature Superconducting (HTS) technology, ...
The LHC current lead project is now entering into the stage of procurement of the components for int...
The Large Hadron Collider (LHC) presently under construction at CERN relies on superconducting techn...
The Large Hadron Collider (LHC) project is the largest plant based on superconductivity and cryogeni...
The Large Hadron Collider (LHC) will be equipped with about 8000 superconducting magnets. Some 3380 ...
The Large Hadron Collider has (LHC) 1572 superconducting circuits which are distributed along the ei...
Feeding superconducting magnets with reliable low-loss devices is a key issue for any cryo-electrica...