Cargando…

Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators

Chapter 11 in High-Luminosity Large Hadron Collider (HL-LHC) : Preliminary Design Report. The Large Hadron Collider (LHC) is one of the largest scientific instruments ever built. Since opening up a new energy frontier for exploration in 2010, it has gathered a global user community of about 7,000 sc...

Descripción completa

Detalles Bibliográficos
Autores principales: Karppinen, M., Izquierdo Bermudez, S., Nobrega, A., Prin, H., Ramos, D., Redaelli, S., Savary, F., Smekens, D., Zlobin, A.
Lenguaje:eng
Publicado: CERN 2015
Materias:
Acceso en línea:https://dx.doi.org/10.5170/CERN-2015-005.187
http://cds.cern.ch/record/2120720
_version_ 1780949337428197376
author Karppinen, M.
Izquierdo Bermudez, S.
Nobrega, A.
Prin, H.
Ramos, D.
Redaelli, S.
Savary, F.
Smekens, D.
Zlobin, A.
author_facet Karppinen, M.
Izquierdo Bermudez, S.
Nobrega, A.
Prin, H.
Ramos, D.
Redaelli, S.
Savary, F.
Smekens, D.
Zlobin, A.
author_sort Karppinen, M.
collection CERN
description Chapter 11 in High-Luminosity Large Hadron Collider (HL-LHC) : Preliminary Design Report. The Large Hadron Collider (LHC) is one of the largest scientific instruments ever built. Since opening up a new energy frontier for exploration in 2010, it has gathered a global user community of about 7,000 scientists working in fundamental particle physics and the physics of hadronic matter at extreme temperature and density. To sustain and extend its discovery potential, the LHC will need a major upgrade in the 2020s. This will increase its luminosity (rate of collisions) by a factor of five beyond the original design value and the integrated luminosity (total collisions created) by a factor ten. The LHC is already a highly complex and exquisitely optimised machine so this upgrade must be carefully conceived and will require about ten years to implement. The new configuration, known as High Luminosity LHC (HL-LHC), will rely on a number of key innovations that push accelerator technology beyond its present limits. Among these are cutting-edge 11-12 tesla superconducting magnets, compact superconducting cavities for beam rotation with ultra-precise phase control, new technology and physical processes for beam collimation and 300 metre-long high-power superconducting links with negligible energy dissipation. The present document describes the technologies and components that will be used to realise the project and is intended to serve as the basis for the detailed engineering design of HL-LHC.
id cern-2120720
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
publisher CERN
record_format invenio
spelling cern-21207202022-08-10T13:06:38Zdoi:10.5170/CERN-2015-005.187http://cds.cern.ch/record/2120720engKarppinen, M.Izquierdo Bermudez, S.Nobrega, A.Prin, H.Ramos, D.Redaelli, S.Savary, F.Smekens, D.Zlobin, A.Chapter 11: 11 T Dipole for the Dispersion Suppressor CollimatorsAccelerators and Storage RingsChapter 11 in High-Luminosity Large Hadron Collider (HL-LHC) : Preliminary Design Report. The Large Hadron Collider (LHC) is one of the largest scientific instruments ever built. Since opening up a new energy frontier for exploration in 2010, it has gathered a global user community of about 7,000 scientists working in fundamental particle physics and the physics of hadronic matter at extreme temperature and density. To sustain and extend its discovery potential, the LHC will need a major upgrade in the 2020s. This will increase its luminosity (rate of collisions) by a factor of five beyond the original design value and the integrated luminosity (total collisions created) by a factor ten. The LHC is already a highly complex and exquisitely optimised machine so this upgrade must be carefully conceived and will require about ten years to implement. The new configuration, known as High Luminosity LHC (HL-LHC), will rely on a number of key innovations that push accelerator technology beyond its present limits. Among these are cutting-edge 11-12 tesla superconducting magnets, compact superconducting cavities for beam rotation with ultra-precise phase control, new technology and physical processes for beam collimation and 300 metre-long high-power superconducting links with negligible energy dissipation. The present document describes the technologies and components that will be used to realise the project and is intended to serve as the basis for the detailed engineering design of HL-LHC.CERNarXiv:1705.09497oai:cds.cern.ch:21207202015
spellingShingle Accelerators and Storage Rings
Karppinen, M.
Izquierdo Bermudez, S.
Nobrega, A.
Prin, H.
Ramos, D.
Redaelli, S.
Savary, F.
Smekens, D.
Zlobin, A.
Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title_full Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title_fullStr Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title_full_unstemmed Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title_short Chapter 11: 11 T Dipole for the Dispersion Suppressor Collimators
title_sort chapter 11: 11 t dipole for the dispersion suppressor collimators
topic Accelerators and Storage Rings
url https://dx.doi.org/10.5170/CERN-2015-005.187
http://cds.cern.ch/record/2120720
work_keys_str_mv AT karppinenm chapter1111tdipoleforthedispersionsuppressorcollimators
AT izquierdobermudezs chapter1111tdipoleforthedispersionsuppressorcollimators
AT nobregaa chapter1111tdipoleforthedispersionsuppressorcollimators
AT prinh chapter1111tdipoleforthedispersionsuppressorcollimators
AT ramosd chapter1111tdipoleforthedispersionsuppressorcollimators
AT redaellis chapter1111tdipoleforthedispersionsuppressorcollimators
AT savaryf chapter1111tdipoleforthedispersionsuppressorcollimators
AT smekensd chapter1111tdipoleforthedispersionsuppressorcollimators
AT zlobina chapter1111tdipoleforthedispersionsuppressorcollimators