The plasma environment of high altitude spacecraft was observed to involve ion drift velocities which sometimes become comparable to ion mean thermal speeds. Such drifts may cause an electrically isolated spacecraft surface to float at a substantially increased negative potential if it is simultaneously shaded and downstream relative to the drift direction. The results showed that: (1) the ion speed ratio at which drift effects become important (i.e. change the floating potential by at least 10 percent) can be as low as 0.1, and may be decreased if the ambient electrons are non-Maxwellian; (2) the effects of ion speed ratio increase with increasing ion-to-electron temperature ratio; and (3) negative floating potentials for drifting Maxwellian ion velocity distributions with speed ratio unity are typically about twice as large as the corresponding potentials for nondrifting conditions.


    Zugriff

    Zugriff über TIB

    Verfügbarkeit in meiner Bibliothek prüfen


    Exportieren, teilen und zitieren



    Titel :

    Prediction of ion drift effects on spacecraft floating potentials


    Beteiligte:
    Chang, J. S. (Autor:in) / Prokopenko, S. M. L. (Autor:in) / Godard, R. (Autor:in) / Laframboise, J. G. (Autor:in)


    Erscheinungsdatum :

    01.01.1979


    Medientyp :

    Aufsatz (Konferenz)


    Format :

    Keine Angabe


    Sprache :

    Englisch




    Prediction of spacecraft potentials at geosynchronous orbit

    Garrett, H. B. / Rubin, A. G. / Pike, C. P. | NTRS | 1979


    Prediction of Spacecraft Potentials at Geosynchronous Orbit

    H. B. Garrett / A. G. Rubin / C. P. Pike | NTIS | 1980


    Prediction of large negative shaded-side spacecraft potentials

    Prokopenko, S. M. L. / Laframboise, J. G. | NTRS | 1977


    Telemetry Parameter Prediction of Spacecraft Power System Based on Concept Drift

    Feng, Bingqing / Guo, Xiaohong / Ren, Junyi et al. | British Library Conference Proceedings | 2022


    Telemetry Parameter Prediction of Spacecraft Power System Based on Concept Drift

    Feng, Bingqing / Guo, Xiaohong / Ren, Junyi et al. | Springer Verlag | 2022