Multiscale Coupling of Spacecraft Charging Model With Electric Propulsion Plume Simulation

被引:6
|
作者
Araki, Samuel J. [1 ]
机构
[1] ERC Inc, Edwards AFB, CA 93524 USA
关键词
Plasma engines; plasma sheaths; simulation; surface charging; NASCAP-2K; SPIS;
D O I
10.1109/TPS.2019.2945534
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
When designing spacecraft with electric propulsion (EP) devices, it is important to assess spacecraft integration to ensure that the important components are not subject to significant sputtering by high-energy ions. In addition to the EP device and its plume, surface charging of spacecraft has to be modeled properly, as surface potential can directly affect the sputtering rate. Three surface charging models are incorporated into the spacecraft module of the numerical simulation framework-Thermophysics Universal Research Framework (TURF), and these include: 1) dielectric; 2) conductive; and 3) charge propagation models. The charge propagation model has been upgraded to solve the surface charge distribution implicitly, allowing a wide range of electrical conductivity values without causing the simulation to become unstable. Each of the charging models is verified against a simple problem where an analytical solution can be determined. Then, the coupling of the surface charging model and a hybrid particle/fluid model is tested in a more complex problem, where the floating potential on a sphere immersed in plasma is to be obtained. Finally, the surface charging model in an EP plume simulation is demonstrated. These problems are multiscale in that the charging model has to resolve an electron timescale (i.e., plasma oscillation) while the particle time step has to be orders of magnitude larger than the electron timescale in order to maintain a long enough sampling window for the ion current to effectively reduce the statistical noise. Therefore, two separate time steps are introduced for a stable convergence of the coupled models.
引用
收藏
页码:4898 / 4908
页数:11
相关论文
共 50 条
  • [31] Simulation of plasma plume-to-spacecraft interaction
    Korsun, AG
    Tverdokhlebova, EM
    Gabdullin, FF
    COMPUTER PHYSICS COMMUNICATIONS, 2004, 164 (1-3) : 353 - 364
  • [32] A charging model for the Rosetta spacecraft
    Johansson, F. L.
    Eriksson, A. I.
    Gilet, N.
    Henri, P.
    Wattieaux, G.
    Taylor, M. G. G. T.
    Imhof, C.
    Cipriani, F.
    ASTRONOMY & ASTROPHYSICS, 2020, 642
  • [33] Research activity in Mitsubishi Electric on spacecraft charging
    Fujii, H
    Palov, A
    Abe, T
    PROCEEDINGS OF THE 7TH SPACECRAFT CHARGING TECHNOLOGY CONFERENCE: 2001: A SPACECRAFT CHARGING ODYSSEY, 2001, 476 : 89 - 94
  • [34] A Simulation Model for the Control of Electric Vehicles Charging Networks
    Davydova, Anastasia
    Lupin, Sergey
    Vagapov, Yuriy
    Chen, Zheng
    PROCEEDINGS OF THE 2017 IEEE RUSSIA SECTION YOUNG RESEARCHERS IN ELECTRICAL AND ELECTRONIC ENGINEERING CONFERENCE (2017 ELCONRUS), 2017, : 378 - 381
  • [35] INTERPLANETARY SPACECRAFT DESIGN USING SOLAR ELECTRIC PROPULSION
    DUXBURY, JH
    PAUL, GM
    JOURNAL OF SPACECRAFT AND ROCKETS, 1976, 13 (02) : 99 - 105
  • [36] Large Spacecraft Electric Propulsion Using Multiphase Generator
    Beik, Omid
    Patel, Mukund R.
    Talebzadeh, Sarah
    2023 IEEE AEROSPACE CONFERENCE, 2023,
  • [37] Rapid and Automatic Reachability Estimation of Electric Propulsion Spacecraft
    Patel, Prashant R.
    Scheeres, Daniel J.
    JOURNAL OF THE ASTRONAUTICAL SCIENCES, 2023, 70 (06):
  • [38] Electric-propulsion spacecraft optimization for lunar missions
    Kluever, CA
    Chang, KR
    JOURNAL OF SPACECRAFT AND ROCKETS, 1996, 33 (02) : 235 - 239
  • [39] Semianalytic Approach for Optimal Configuration of Electric Propulsion Spacecraft
    Pergola, Pierpaolo
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2015, 43 (01) : 305 - 320
  • [40] An adaptive groundtrack maintenance scheme for spacecraft with electric propulsion
    Leomanni, Mirko
    Garulli, Andrea
    Giannitrapani, Antonio
    Scortecci, Fabrizio
    ACTA ASTRONAUTICA, 2020, 167 (167) : 460 - 466