DocumentCode :
3583679
Title :
Double-wall collimator design of the SNS project
Author :
Simos, N. ; Ludewig, H. ; Catalan-Lasheras, N. ; Crivello, S.
Author_Institution :
Brookhaven Nat. Lab., Upton, NY, USA
Volume :
2
fYear :
2001
fDate :
6/23/1905 12:00:00 AM
Firstpage :
1405
Abstract :
The collimator absorber array of the Spallation Neutron Source (SNS) project is responsible for stopping the 1.0 GeV protons that are in the halo of the beam. It is estimated that 0.1% of the 2 MW beam will be intercepted by the adopted collimating scheme implemented at various sections of the beam transport and accumulation. This paper summarizes the conceptual design of the collimator absorber as well as the supporting detailed analysis that were performed and guided the design process. The key requirement in the design process is the need for the collimator beam tube to minimize beam impedance while closely following its beta function. Due to lack of available experimental data, the long-term behavior of irradiated materials in an environment where they interface with coolant flow becomes an issue. Uncertainties in the long-term behavior prompted a special double-wall design that will enable not only beam halo interception but also the efficient transfer of deposited energy both under normal and off-normal conditions to the coolant flow. The thermo-mechanical response of the double wall beam tube and of a particle bed surrounding it are discussed in detail in the paper
Keywords :
beam handling equipment; neutron sources; nuclear bombardment targets; particle beam dynamics; proton accelerators; proton beams; proton effects; storage rings; thermal stress cracking; 1.0 GeV; 2 MW; SNS; Spallation Neutron Source; beam halo interception; beam halos; beam impedance; beam transport; beta function; collimator absorber array; collimator beam tube; coolant flow; double-wall collimator design; irradiated materials; particle bed; proton beams; thermomechanical response; Collimators; Coolants; Impedance; Neutrons; Particle beams; Performance analysis; Process design; Protons; Thermomechanical processes; Uncertainty;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Particle Accelerator Conference, 2001. PAC 2001. Proceedings of the 2001
Print_ISBN :
0-7803-7191-7
Type :
conf
DOI :
10.1109/PAC.2001.986695
Filename :
986695
Link To Document :
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