Thermo-structural modelling of a plasma discharge tube for electric propulsion

被引:0
|
作者
de Faoite, D. [1 ]
Browne, D. J. [1 ]
Del Valle Gamboa, J. I. [2 ]
Stanton, K. T. [1 ]
机构
[1] Univ Coll Dublin, UCD Sch Mech & Mat Engn, Dublin, Ireland
[2] Ad Astra Rocket Co, Liberia, Costa Rica
关键词
Thermo-structural modelling; Plasma; Discharge tube; Electric propulsion;
D O I
10.1016/j.applthermaleng.2015.12.054
中图分类号
O414.1 [热力学];
学科分类号
摘要
Potential thermal management strategies for the plasma generation section of a VASIMR (R) high-power electric propulsion space thruster are assessed. The plasma is generated in a discharge tube using helicon waves. The plasma generation process causes a significant thermal load on the plasma discharge tube and on neighbouring components, caused by cross-field particle diffusion and UV radiation. Four potential cooling system design strategies are assessed to deal with this thermal load. Four polycrystalline ceramics are evaluated for use as the plasma discharge tube material: alumina, aluminium nitride, beryllia, and silicon nitride. A finite element analysis (FEA) method was used to model the steady-state temperature and stress fields resulting from the plasma heat flux. Of the four materials assessed, aluminium nitride would result in the lowest plasma discharge tube temperatures and stresses. It was found that a design consisting of a monolithic ceramic plasma containment tube fabricated from aluminium nitride would be capable of operating up to a power level of at least 250 kW. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:541 / 552
页数:12
相关论文
共 50 条
  • [31] Scale modeling of thermo-structural fire tests of wood members
    Gangi, Michael J.
    Lattimer, Brian Y.
    Case, Scott W.
    ENGINEERING STRUCTURES, 2023, 294
  • [32] Thermo-structural analysis of ITER divertor for normal operating conditions
    Menon, Vinay
    Krishnan, Deepu
    Parmar, Jayesh
    Trapasya, Shobhit
    Khirwadkar, Sameer
    FUSION ENGINEERING AND DESIGN, 2022, 180
  • [33] Preliminary thermo-structural analyses of the new DTT bolometric camera
    D'Agostino, V.
    Belpane, A.
    Palomba, S.
    Peluso, E.
    Wyss, I.
    Spolaore, B.
    Regoli, I.
    Gabellieri, L.
    Apruzzese, G.
    Murari, A.
    Gelfusa, M.
    FUSION ENGINEERING AND DESIGN, 2025, 215
  • [34] Thermo-structural monitoring of RCC dam in India through instrumentation
    Ashtankar, V. B.
    Chore, H. S.
    STRUCTURAL MONITORING AND MAINTENANCE, 2015, 2 (02): : 95 - 113
  • [35] UNSTEADY THERMO-STRUCTURAL SIMULATION OF NANO-BRIDGE RESONATORS
    Maghsoudi, Elham
    Martin, Michael James
    PROCEEDINGS OF THE ASME INTERNATIONAL TECHNICAL CONFERENCE AND EXHIBITION ON PACKAGING AND INTEGRATION OF ELECTRONIC AND PHOTONIC MICROSYSTEMS, 2013, VOL 1, 2014,
  • [36] Thermo-structural analysis of cryogenic tanks with common bulkhead configuration
    Sumith, S.
    Kumar, R. Ramesh
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2022, 236 (05) : 900 - 909
  • [37] Sensitivity analysis method and shape optimization of thermo-structural steady response
    Long, Kai
    Zuo, Zhengxing
    Jixie Gongcheng Xuebao/Chinese Journal of Mechanical Engineering, 2007, 43 (08): : 72 - 76
  • [38] Thermo-structural analysis of a dump nozzle for conducting hot liquid sodium
    Bhuvanashankar, P.
    Sathishkumar, S.
    Vinod, V.
    Pandikumar, G.
    Radha, R.
    Gobinath, N.
    NUCLEAR ENGINEERING AND DESIGN, 2024, 424
  • [39] “Advanced Thermo-Structural Materials and Thermal Protection Systems” (ADTHERM’20)
    S. C. Sharma
    Transactions of the Indian National Academy of Engineering, 2021, 6 (1) : 1 - 1
  • [40] The structure and thermo EMF of a nanotubular carbon deposit formed in electric discharge plasma
    Zolotukhin, IV
    Golev, IM
    Belonogov, EK
    Ievlev, VP
    Derzhnev, DA
    Markova, AE
    TECHNICAL PHYSICS LETTERS, 2003, 29 (12) : 1006 - 1008