{"title":"Design of a large-scale superconducting dipole magnet for the CEE spectrometer","authors":"Yuquan Chen, Wei You, Jiaqi Lu, Yujin Tong, Luncai Zhou, Beimin Wu, Enming Mei, Wentian Feng, Xianjin Ou, Wei Wu, Qinggao Yao, Peng Yang, Yuhong Yu, Zhiyu Sun","doi":"arxiv-2409.02030","DOIUrl":null,"url":null,"abstract":"The CSR External-target Experiment (CEE) is a large-scale spectrometer under\nconstruction at the Heavy Ion Research Facility in Lanzhou (HIRFL) for studying\nthe phase structure of nuclear matter at high baryon density and the equation\nof states of nuclear matter at supra-saturation densities. One of the key\ncomponents is a large acceptance dipole magnet with a central field of 0.5 T\nand the homogeneity of 5% within a 1 m long, 1.2 m wide, and 0.9 m high\naperture. Detectors will be installed within this aperture. An innovative\ndesign for the superconducting detector magnet is proposed that goes beyond the\nconventional approach. The magnet is designed as a coil-dominant type, with\nconductors discretized on a racetrack-shaped cross-section to generate the\nnecessary fields. A warm iron yoke is used to enhance the central field and\nminimize the stray field. The magnet has overall dimensions of 3.4 meters in\nlength, 2.7 meters in height, and 4.3 meters in width. The coils will be wound\nusing a 19-strand rope cable comprised of 12 NbTi superconducting wires and 7\ncopper wires. The ratio of copper to superconductor of the cable is 6.9. The\nkeel supports serve as the primary structural support for the coils to\nwithstand the electromagnetic force. The coils will be indirectly cooled by\nliquid helium within three external helium vessels. To ensure reliable\nprotection of the magnet during a quench, an active protection method combined\nwith quench-back effect is employed. In this paper, we mainly present the\ndetailed design of the magnetic field, structure, quench protection and\ncryostat for the spectrometer magnet.","PeriodicalId":501374,"journal":{"name":"arXiv - PHYS - Instrumentation and Detectors","volume":"2 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Instrumentation and Detectors","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2409.02030","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The CSR External-target Experiment (CEE) is a large-scale spectrometer under
construction at the Heavy Ion Research Facility in Lanzhou (HIRFL) for studying
the phase structure of nuclear matter at high baryon density and the equation
of states of nuclear matter at supra-saturation densities. One of the key
components is a large acceptance dipole magnet with a central field of 0.5 T
and the homogeneity of 5% within a 1 m long, 1.2 m wide, and 0.9 m high
aperture. Detectors will be installed within this aperture. An innovative
design for the superconducting detector magnet is proposed that goes beyond the
conventional approach. The magnet is designed as a coil-dominant type, with
conductors discretized on a racetrack-shaped cross-section to generate the
necessary fields. A warm iron yoke is used to enhance the central field and
minimize the stray field. The magnet has overall dimensions of 3.4 meters in
length, 2.7 meters in height, and 4.3 meters in width. The coils will be wound
using a 19-strand rope cable comprised of 12 NbTi superconducting wires and 7
copper wires. The ratio of copper to superconductor of the cable is 6.9. The
keel supports serve as the primary structural support for the coils to
withstand the electromagnetic force. The coils will be indirectly cooled by
liquid helium within three external helium vessels. To ensure reliable
protection of the magnet during a quench, an active protection method combined
with quench-back effect is employed. In this paper, we mainly present the
detailed design of the magnetic field, structure, quench protection and
cryostat for the spectrometer magnet.