• High Power Laser and Particle Beams
  • Vol. 35, Issue 3, 034004 (2023)
Wenzhong Zhou1、2、3, Weimin Pan1、3、*, Rui Ge1、3, Feisi He1, Zhongquan Li1, Zihan Wang1、3, Zhenghui Mi1, Tongming Huang1, jin Dai1, qiang Ma1, Miaofu Xu1, Mei Li1, Xiaolong Wang1、2, Baiqi Liu1, Xinying Zhang1, Huachang Liu1、2, Jun Peng1、2, and Sheng Wang1、2、3
Author Affiliations
  • 1Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China
  • 2Spallation Neutron Source Science Center, Dongguan 523803, China
  • 3University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.11884/HPLPB202335.220266 Cite this Article
    Wenzhong Zhou, Weimin Pan, Rui Ge, Feisi He, Zhongquan Li, Zihan Wang, Zhenghui Mi, Tongming Huang, jin Dai, qiang Ma, Miaofu Xu, Mei Li, Xiaolong Wang, Baiqi Liu, Xinying Zhang, Huachang Liu, Jun Peng, Sheng Wang. Design of the China Spallation Neutron Source phase II double spoke resonator[J]. High Power Laser and Particle Beams, 2023, 35(3): 034004 Copy Citation Text show less
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    [3] Krawczyk F L, Chan K C D, Gentzlinger R C, et al. An integrated design f a beta=0.175 spoke resonat associated power coupler[C]Proceedings of the 8th European Particle Accelerat Conference. 2002: 272274.

    [4] Zaplatin E. Multispoke cavity end region analysis[C]Proceedings of the 12th International Wkshop on RF Superconductivity. 2005: 337341.

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    [6] Zhou Quan. Physical experimental studies of high perfmance superconducting double spoke cavity[D]. Beijing: University of Chinese Academy of Sciences, 2021

    [7] Delayen J R, De Silva S U, Hopper C S. Design of superconducting spoke cavities f highvelocity applications[C]Proceedings of 2011 Particle Accelerat Conference. 2011: 10241026.

    [8] Delayen J R. Low intermediate beta cavity design—a tutial[C]Proceedings of the 11th Wkshop on RF Superconductivity. 2015: 486495.

    [9] Padamsee H, Knobloch J, Hays T. RF superconductivity f accelerats[M]. 2nd ed. Weinheim: WileyVCH, 2008.

    [10] Zheng Hongjuan, Zhang Pei, Li Zhongquan, et al. Design optimization of a mechanically improved 499.8-MHz single-cell superconducting cavity for HEPS[J]. IEEE Transactions on Applied Superconductivity, 31, 3500109(2021).

    [11] Merio M. Material properties f engineering analyses of SRF cavities[M]. Fermi National Accelerat Labaty, 2011.

    [12] Ginsburg C M, Reid C, Sergatskov D A. Magnetic shielding for the Fermilab vertical cavity test facility[J]. IEEE Transactions on Applied Superconductivity, 19, 1419-1422(2009).

    [13] Jung Y, Joung M, Hyun M O, et al. Analysis of high pressure rinsing chacteristics f SRF cavities[C]Proceedings of SRF2015. 2015: 414417.

    [14] Guo H, Xiong P R, Shi Z X, et al. Study on local chemical treatment f recovery from surface oxidation by HPR process on SRF cavities[C]18th International Conference on RF Superconductivity. 2017: 592594.

    [15] Jones T, Pattalwar S, Burt G, et al. Determining BCP etch rate unifmity in high luminosity LHC crab cavities[C]18th International Conference on RF Superconductivity. 2017: 635639.

    [16] Boffo C, Elementi L, Terechkine Y. Facility for chemical polishing of superconducting niobium RF cavities[J]. IEEE Transactions on Applied Superconductivity, 15, 2401-2404(2005).

    CLP Journals

    [1] Ming Liu, Zhenghui Mi, Weimin Pan, Rui Ge, Feisi He, Wenzhong Zhou, Miaofu Xu, Zihan Wang. Design of 648 MHz superconducting cavity tuner forChina Spallation Neutron Source phase II[J]. High Power Laser and Particle Beams, 2023, 35(12): 124007

    Wenzhong Zhou, Weimin Pan, Rui Ge, Feisi He, Zhongquan Li, Zihan Wang, Zhenghui Mi, Tongming Huang, jin Dai, qiang Ma, Miaofu Xu, Mei Li, Xiaolong Wang, Baiqi Liu, Xinying Zhang, Huachang Liu, Jun Peng, Sheng Wang. Design of the China Spallation Neutron Source phase II double spoke resonator[J]. High Power Laser and Particle Beams, 2023, 35(3): 034004
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