Simulation study of effective pumping speed of divertor pumping system for CFETR with COMSOL Multiphysics

被引:4
作者
Bi, Hailin [1 ,2 ]
Zhang, Yicong [1 ]
Wang, Xudi [1 ]
Chen, Zhaoxi [3 ]
Yu, Zhihang [3 ]
Yuan, Jingsheng [3 ]
Zuo, Guizhong [3 ]
机构
[1] Hefei Univ Technol, Sch Mech Engn, Hefei 230009, Peoples R China
[2] Wuhu Changxin Technol Co Ltd, Wuhu 241009, Peoples R China
[3] Chinese Acad Sci, Inst Plasma Phys, Hefei 230031, Peoples R China
关键词
CFETR; Divertor pumping system; Flow conductance; Effective pumping speed; COMSOL Multiphysics; NEUTRAL GAS-FLOW; PLUS;
D O I
10.1016/j.fusengdes.2023.113916
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
In this study, COMSOL Multiphysics is used in the numerical analysis of a neutral gas in the divertor pumping system of the China Fusion Engineering Test Reactor (CFETR). The slip boundary condition modified Navier-Stokes equation and angular coefficient methods are used for simulation. The corresponding divertor inlet pressures are 1 Pa under plasma discharge and 1 x 10-5 Pa at the pumping limit. Additionally, the throughput and flow conductance of the divertor pumping system are calculated. The effective pumping speed (EPS) of a single cryopump in a vacuum chamber is also computed. Results indicate that the EPS values of the single cryopump from the divertor inlet are 33.35 and 16.91 m3/s, corresponding to the divertor inlet pressures of 1 and 1 x 10-5 Pa, respectively. By comparing the simulation results with those of the direct simulation Monte Carlo and test particle Monte Carlo methods, the feasibility of COMSOL Multiphysics was verified with a maximum error of less than 5%. This study provides technical support to the subsequent optimization of CFETR divertor pumping channels and EPS evaluation.
引用
收藏
页数:7
相关论文
共 31 条
  • [1] Ady M., 2014, P 5 INT PART ACC C I, P2014
  • [2] Bird G.A., 1994, MOL GAS DYNAMICS DIR
  • [3] Carosso N., 2014, P SPIE INT SOC OPT E, V9196
  • [4] Cosine law at the atomic scale: Toward realistic simulations of Knudsen diffusion
    Celestini, Franck
    Mortessagne, Fabrice
    [J]. PHYSICAL REVIEW E, 2008, 77 (02):
  • [5] Chenault C.F., 1994, J THERMOPHYS HEAT TR
  • [6] Status of the ITER vacuum vessel construction
    Choi, C. H.
    Sborchia, C.
    Ioki, K.
    Giraud, B.
    Utin, Yu.
    Sa, J. W.
    Wang, X.
    Teissier, P.
    Martinez, J. M.
    Le Barbier, R.
    Jun, C.
    Dani, S.
    Barabash, V.
    Vertongen, P.
    Alekseev, A.
    Jucker, P.
    Bayon, A.
    Pathak, H.
    Raval, J.
    Ahn, H. J.
    Kim, B. C.
    Kuzmin, E.
    Savrukhin, P.
    [J]. FUSION ENGINEERING AND DESIGN, 2014, 89 (7-8) : 1859 - 1863
  • [7] The vacuum systems of ITER
    Day, C.
    Murdoch, D.
    Pearce, R.
    [J]. VACUUM, 2008, 83 (04) : 773 - 778
  • [8] Simulation of neutral gas flow in a tokamak divertor using the Direct Simulation Monte Carlo method
    Gleason-Gonzalez, Cristian
    Varoutis, Stylianos
    Hauer, Volker
    Day, Christian
    [J]. FUSION ENGINEERING AND DESIGN, 2014, 89 (7-8) : 1042 - 1047
  • [9] ITER divertor gas flow modelling
    Hauer, V.
    Day, Chr.
    [J]. FUSION ENGINEERING AND DESIGN, 2015, 98-99 : 1775 - 1778
  • [10] Conductance modelling of ITER vacuum systems
    Hauer, V.
    Day, Chr.
    [J]. FUSION ENGINEERING AND DESIGN, 2009, 84 (2-6) : 903 - 907