DocumentCode
1067608
Title
Commissioning of the Superconducting Linac at the Spallation Neutron Source (SNS)
Author
Kim, Sang-Ho ; Campisi, Isidoro E.
Author_Institution
Oak Ridge Nat. Lab. (ORNL), Oak Ridge
Volume
17
Issue
2
fYear
2007
fDate
6/1/2007 12:00:00 AM
Firstpage
1299
Lastpage
1304
Abstract
The use of superconducting radiofrequency (SRF) cavities in particle accelerator is becoming more widespread. Among the projects that make use of that technology is the Spallation Neutron Source, where H-ions are accelerated to about 1 GeV, mostly making use of niobium elliptical cavities. SNS will use the accelerated short (about 700 ns) sub-bunches of protons to generate neutrons by spallation, which will in turn allow probing structural and magnetic properties of new and existing materials. The SNS superconducting linac is the largest application of RF superconductivity to come on-line in the last decade. The SRF cavities, operated at 805 MHz, were designed, built and integrated into cryomodules at Jefferson Lab and installed and tested at SNS. SNS is also the first proton-like accelerator which uses SRF cavities in a pulse mode. Many of the details of the cavity performance are peculiar to this mode of operation, which is also being applied to lepton accelerators (TESLA test facility and X-FEL at DESY and the international linear collider project). Thanks to the low frequency of the SNS superconducting cavities, operation at 4.2 K has been possible without beam energy degradation, even though the cavities and cryogenic systems were originally designed for 2.1 K operation. The testing of the superconducting cavities, the operating experience with beam and the performance of the superconducting linac will be presented.
Keywords
linear accelerators; neutron sources; nuclear spallation; proton accelerators; superconducting machines; H-ions; RF superconductivity; beam energy degradation; cryogenic systems; frequency 805 MHz; lepton accelerators; magnetic properties; niobium elliptical cavities; particle accelerator; proton beam; proton-like accelerator; pulsed operation; spallation neutron source; structural properties; superconducting cavities; superconducting linac; superconducting radiofrequency cavities; temperature 4.2 K; Acceleration; Linear particle accelerator; Magnetic materials; Magnetic properties; Neutrons; Niobium; Proton accelerators; Radio frequency; Superconducting devices; Testing; Neutron source; particle accelerator; proton beam; pulsed operation; superconducting radio-frequency;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2007.897857
Filename
4277507
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