Test results of HD1b, an upgraded 16 tesla Nb3Sn dipole magnet

被引:20
作者
Lietzke, AF [1 ]
Bartlett, SE [1 ]
Bish, P [1 ]
Caspi, S [1 ]
Dietderich, D [1 ]
Ferracin, P [1 ]
Gourlay, SA [1 ]
Hafalia, AR [1 ]
Hannaford, CR [1 ]
Higley, H [1 ]
Lau, W [1 ]
Liggins, N [1 ]
Mattafirri, S [1 ]
Nyman, M [1 ]
Sabbi, G [1 ]
Scanlan, R [1 ]
Swanson, J [1 ]
机构
[1] Lawrence Berkeley Natl Lab, Berkeley, CA 94720 USA
关键词
dipole; high-field; Nb3Sn; superconducting magnets; test results;
D O I
10.1109/TASC.2005.849509
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 [电气工程]; 0809 [电子科学与技术];
摘要
The Superconducting Magnet Group at Lawrence Berkeley National Laboratory has been developing high-field, brittle-superconductor, accelerator magnet technology, in which the conductor's support system can significantly impact conductor performance (as well as magnet training). A recent H-dipole coil test (HD1) achieved a peak bore-field of 16 Tesla, using two, flat-racetrack, double-layer Nb3Sn coils. However, its 4.5 K training was slow, with an erratic plateau at similar to 92% of its un-degraded "short-sample" expectation (similar to 16.6 T). Quench-origins correlated with regions where low conductor pre-stress had been expected (3-D FEM predictions and variations in 300 K coil-size). The coils were re-assembled with minor coil-support changes and re-tested as "HD1b", with a 185 MPa average pre-stress (30 MPa higher than HDI, with a 15-20 MPa pole-turn margin expected at 17 T). Training started higher (15.1 T), and quickly reached a stable, negligibly higher plateau at 16 T. After a thermal cycle, training started at 15.4 T, but peaked at 15.8 T, on the third attempt, before degrading to a 15.7 T plateau. The temperature dependence of this plateau was explored in a sub-atmospheric LHe bath to 3.0 K. Magnet performance data for both thermal cycles is presented and discussed, along with issues for future high-field accelerator magnet development.
引用
收藏
页码:1123 / 1127
页数:5
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