Deprecated: $wgMWOAuthSharedUserIDs=false is deprecated, set $wgMWOAuthSharedUserIDs=true, $wgMWOAuthSharedUserSource='local' instead [Called from MediaWiki\HookContainer\HookContainer::run in /var/www/html/w/includes/HookContainer/HookContainer.php at line 135] in /var/www/html/w/includes/Debug/MWDebug.php on line 372
A method for near field computation of coupled weakly ionized plasma flows in low Earth orbit - MaRDI portal

A method for near field computation of coupled weakly ionized plasma flows in low Earth orbit (Q1891103)

From MaRDI portal





scientific article; zbMATH DE number 758633
Language Label Description Also known as
English
A method for near field computation of coupled weakly ionized plasma flows in low Earth orbit
scientific article; zbMATH DE number 758633

    Statements

    A method for near field computation of coupled weakly ionized plasma flows in low Earth orbit (English)
    0 references
    0 references
    0 references
    0 references
    9 November 1995
    0 references
    A simulation study of wake effects of a spacecraft is the main goal of the paper, and a new numerical method is proposed describing the properties of the chemically reacting flow as well as its thermal accomodation at the spacecraft surface. Since the nature of the flow physics is highly coupled, a full solution simultaneous approach is used. High resolution grid is used in the near wake region. The flow simulation uses Monte Carlo technique. Charged particles are treated by particle solutions of Poisson equation. Separate grid technique is applied to charged and neutral particles which interact by collisions. Charged particles interact with Coulomb forces, no influence of geomagnetic field is taken into account, only a constant magnetic field may intervene. The computational geometry does not prefer any special symmetry. Results for neutral or charged particle flows and full flow simulations are presented for orbital altitudes between 250 and 500 km, and it is found that the method gives excellent agreement with the results of previously verified computational algorithms.
    0 references
    charged particles
    0 references
    separate grid technique
    0 references
    wake effects
    0 references
    spacecraft
    0 references
    chemically reacting flow
    0 references
    thermal accomodation
    0 references
    Monte Carlo technique
    0 references
    Poisson equation
    0 references
    neutral particles
    0 references
    Coulomb forces
    0 references
    constant magnetic field
    0 references
    0 references

    Identifiers