Design and test of a module of a breathable Electrostatic Shield for the MITICA 1 MV negative ion Beam Source

被引:0
|
作者
Chitarin, G. [1 ,2 ]
Patton, T. [2 ]
Pilan, N. [2 ]
Sartori, E. [1 ,2 ]
机构
[1] Univ Padua, Dept Management & Engn, Strad S Nicola 3, I-36100 Vicenza, Italy
[2] Univ Padua, Consorzio RFX, CNR, ENEA,Ist Nazl Fis Nucl,Acciaierie Venete SpA, Cso Stati Uniti 4, I-35127 Padua, Italy
来源
JOURNAL OF INSTRUMENTATION | 2024年 / 19卷 / 10期
关键词
Ion sources (positive ions; negative ions; electron cyclotron resonance (ECR); electron beam (EBIS)); Plasma generation (laser-produced; RF; x ray-produced);
D O I
10.1088/1748-0221/19/10/C10001
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The electrical insulation of the MITICA Beam Source at 1 MV is a challenging issue, which has not been fully addressed so far on the basis of experimental results and of theoretical models available in literature. Being MITICA the full-size prototype of the Heating Neutral Beam Injector for the ITER fusion experiment, its electrical insulation is constituted just by vacuum gaps and alumina insulators, since other insulating materials such as SF6 gas or fibreglass-reinforced plastic (FRP) would be quickly degraded by the expected neutron flux produced by fusion reaction. Extrapolations based on HV tests on reduced-scale models have recently indicated the risk of electrical breakdowns in the vacuum gap between electrodes nominally operating at - 1 MV and the vacuum vessel (at ground potential). The risk of electrical breakdown can be mitigated by introducing an intermediate Electrostatic Shield (ES), which essentially is an equipotential (metallic) enclosure surrounding the HV electrode, so as to divide the vacuum gap in two independent insulating gaps of 400 kV and 600 kV respectively. However, for optimal negative ion production, the ion source shall operate in H2 or D2 at a pressure of similar to 0.3 Pa and unavoidably produces a flow of gas leaking out in the surrounding vacuum. Thus, the presence of an intermediate shield can substantially increase the background gas pressure in the vacuum gaps, and, due to the large gap length (0.6 m), exacerbate the risk of breakdown when the pressure approaches the conditions of Paschen-type discharges. In addition to this, RF-induced breakdowns were found on the rear side of the ion source during the operation of the prototype source SPIDER, which were somewhat correlated to a relatively high hydrogen pressure in that area. For these reasons, a structure capable of constituting a full equipotential barrier all around the BS and, at the same time, having sufficient gas conductivity (breathability) to allow efficient pumping of background gas, has been designed. In the first part of the paper, the requirements and design optimization of a breathable module of the intermediate ES are described. Then, an experimental campaign for the validation of the electrode implementation the test configurations and the experimental procedure is discussed.
引用
收藏
页数:15
相关论文
共 44 条
  • [21] Design and Verification of Calorimeter for CFETR Neutral Beam Injection System Prototype with Negative Ion Source
    Tao, Ling
    Xie, Yuanlai
    Hu, Chundong
    Xu, Yongjian
    Yi, Wei
    Tang, Ning
    FUSION SCIENCE AND TECHNOLOGY, 2022, 78 (06) : 490 - 502
  • [22] Development of a set of movable electrostatic probes to characterize the plasma in the ITER neutral beam negative-ion source prototype
    Sartori, E.
    Brombin, M.
    Laterza, B.
    Zuin, M.
    Cavazzana, R.
    Cervaro, V.
    Agostini, F. Degli
    Fadone, M.
    Fasolo, D.
    Grando, L.
    Jain, P.
    Kisaki, M.
    Maistrello, A.
    Moro, G.
    Pimazzoni, A.
    Poggi, C.
    Segalini, B.
    Shepherd, A.
    Spolaore, M.
    Taliercio, C.
    Tollin, M.
    Ugoletti, M.
    Veltri, P.
    Zamengo, A.
    Serianni, G.
    FUSION ENGINEERING AND DESIGN, 2021, 169
  • [23] Beam calorimetry at the large negative ion source test facility ELISE: Experimental setup and latest results
    Nocentini, Riccardo
    Bonomo, Federica
    Ricci, Marina
    Pimazzoni, Antonio
    Fantz, Ursel
    Heinemann, Bernd
    Riedl, Rudolf
    Wuenderlich, Dirk
    FUSION ENGINEERING AND DESIGN, 2016, 109 : 673 - 677
  • [24] Tomographic reconstruction of the beam emissivity profile in the negative ion source NIO1
    Fonnesu, N.
    Agostini, M.
    Pasqualotto, R.
    Serianni, G.
    Veltri, P.
    NUCLEAR FUSION, 2016, 56 (12)
  • [25] Conceptional design of photoneutralization test system for negative ion-based neutral beam injection
    Hong, Hui-hui
    Liang, Li-zhen
    Xie, Yuan-lai
    Wang, Qian-xu
    Pan, Zhuo
    Jiang, Yao
    NUCLEAR ENGINEERING AND TECHNOLOGY, 2025, 57 (01)
  • [26] Design, Installation, Commissioning and Operation of a Beamlet Monitor in the negative ion beam test stand at NIFS
    Antoni, V.
    Agostinetti, P.
    Brombin, M.
    Cervaro, V.
    Delogu, R.
    De Muri, M.
    Fasolo, D.
    Franchin, L.
    Ghiraldelli, R.
    Ikeda, K.
    Kisaki, M.
    Molon, F.
    Muraro, A.
    Nakano, H.
    Pasqualotto, R.
    Serianni, G.
    Takeiri, Y.
    Tollin, M.
    Tsumori, K.
    Veltri, P.
    FOURTH INTERNATIONAL SYMPOSIUM ON NEGATIVE IONS, BEAMS AND SOURCES (NIBS 2014), 2015, 1655
  • [27] Design and Test of the Interlock Protection System for Extraction Power Supply of Negative Ion Source at ASIPP
    Huang, M. C.
    Hu, C. D.
    Jiang, C. C.
    Zhao, Y. Z.
    Xie, Y. H.
    Wei, J. L.
    Chen, S. Y.
    Cui, Q. L.
    Pan, J. J.
    Xie, Y. L.
    FUSION SCIENCE AND TECHNOLOGY, 2019, 75 (04) : 330 - 337
  • [28] Design of the New Extraction Grid for the NIO1 Negative Ion Source
    Veltri, P.
    Cavenago, M.
    Baltador, C.
    FOURTH INTERNATIONAL SYMPOSIUM ON NEGATIVE IONS, BEAMS AND SOURCES (NIBS 2014), 2015, 1655
  • [29] Design, construction and test of an optimized Faraday cup for beam current determination of a helicon ion source
    Masoumzadeh, A.
    Habibi, M.
    Afsharmanesh, M.
    VACUUM, 2019, 159 : 99 - 104
  • [30] Electrostatic energy analyzer measurements of low energy zirconium beam parameters in a plasma sputter-type negative ion source
    Malapit, Giovanni M.
    Mahinay, Christian Lorenz S.
    Poral, Matthew D.
    Ramos, Henry J.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (02):