Title :
The magnetic properties of the SLC intersection region superconducting quadrupole triplets
Author :
McInturff, A.D. ; Carson, J.A. ; Fisk, H.E. ; Erickson, R.A.
Author_Institution :
Fermi Nat. Accel. Lab., Batavia, IL, USA
fDate :
3/1/1988 12:00:00 AM
Abstract :
The measured magnetic-field parameters of the quadrupoles comprising the final triplet lens system for the Stanford Linear Accelerator Center (SLAC) Linear Collider (SLC) intersection region are presented. The minimum design gradient specifications for these quadrupoles are 1.7 T/cm at 4.6 K and 1.6 T/cm at 4.6 K in a 0.6 T external solenoidal field. Superconducting quadrupoles of two lengths have been specified for the SLC triplets. The effective magnetic length of type Q1 is 66.498+or-0.305 cm and Q2 is 121.106+or-0.61 cm. The superconducting performance characteristics of the quadrupoles that have been measured are: maximum critical current as a function of bath temperature, as a function of rate of change of magnetic field, and as a percentage of the short sample. Short-sample performance is defined as the current reached by the cable in a perpendicular magnetic field equal to the peak field in the winding at bath temperature. The maximum gradient achieved during testing was 1.04 T/cm (4.25 K) and 2.07 T/cm (3.2 K). This represented 95% of the strand critical current value. The magnetic length of the first Q2 was measured to be 120.85+or-0.1 cm. The Fourier harmonic coefficients of the magnetic field were measured as a function of current and are reported.
Keywords :
beam handling equipment; storage rings; superconducting magnets; 121.1 cm; 3.2 to 4.6 K; 66.5 cm; Fourier harmonic coefficients; SLAC; SLC; SLC intersection region; Stanford Linear Accelerator Center; critical current; design gradient specifications; effective magnetic length; magnetic properties; magnetic-field parameters; performance characteristics; rate of change of magnetic field; superconducting quadrupole triplets; testing; triplet lens system; Critical current; Current measurement; Lenses; Linear accelerators; Magnetic field measurement; Magnetic properties; Superconducting cables; Superconducting magnets; Temperature; Testing;
Journal_Title :
Magnetics, IEEE Transactions on