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Modeling Inner Magnetospheric Electric Fields : Latest Self-Consistent Results. / Sazykin, Stanislav; Spiro, Robert W.; Wolf, Richard A.; Toffoletto, Frank R.; Tsyganenko, Nikolai A.; Goldstein, J.; Hairston, Marc R.

The Inner Magnetosphere: Physics and Modeling. American Geophysical Union, 2013. стр. 263-269.

Результаты исследований: Публикации в книгах, отчётах, сборниках, трудах конференцийглава/разделРецензирование

Harvard

Sazykin, S, Spiro, RW, Wolf, RA, Toffoletto, FR, Tsyganenko, NA, Goldstein, J & Hairston, MR 2013, Modeling Inner Magnetospheric Electric Fields: Latest Self-Consistent Results. в The Inner Magnetosphere: Physics and Modeling. American Geophysical Union, стр. 263-269. https://doi.org/10.1029/155GM28

APA

Sazykin, S., Spiro, R. W., Wolf, R. A., Toffoletto, F. R., Tsyganenko, N. A., Goldstein, J., & Hairston, M. R. (2013). Modeling Inner Magnetospheric Electric Fields: Latest Self-Consistent Results. в The Inner Magnetosphere: Physics and Modeling (стр. 263-269). American Geophysical Union. https://doi.org/10.1029/155GM28

Vancouver

Sazykin S, Spiro RW, Wolf RA, Toffoletto FR, Tsyganenko NA, Goldstein J и пр. Modeling Inner Magnetospheric Electric Fields: Latest Self-Consistent Results. в The Inner Magnetosphere: Physics and Modeling. American Geophysical Union. 2013. стр. 263-269 https://doi.org/10.1029/155GM28

Author

Sazykin, Stanislav ; Spiro, Robert W. ; Wolf, Richard A. ; Toffoletto, Frank R. ; Tsyganenko, Nikolai A. ; Goldstein, J. ; Hairston, Marc R. / Modeling Inner Magnetospheric Electric Fields : Latest Self-Consistent Results. The Inner Magnetosphere: Physics and Modeling. American Geophysical Union, 2013. стр. 263-269

BibTeX

@inbook{f52f817cd8d345328255a8837d70b728,
title = "Modeling Inner Magnetospheric Electric Fields: Latest Self-Consistent Results",
abstract = "This paper presents some of the latest results of self-consistent numerical modeling of large-scale inner-magnetospheric electric fields obtained with the Rice Convection Model (RCM). The RCM treats plasma drifts, electric fields, and currents in the inner magnetosphere self-consistently in the quasi-static (slow-flow) approximation under the assumption of isotropic pitch-angle distribution. Event simulations of the magnetic storm of March 31, 2001 are used with two newly available RCM input models: an empirical model of the storm-time magnetospheric magnetic field, and an empirical model of the plasma sheet. Results show that the effect of severe distortion of the magnetic field during very large magnetic storms improves the ability of the RCM to predict the location of Sub-Auroral Polarization Stream (SAPS) events, although there is not perfect agreement with observations. Weakening of shielding by region-2 Birkeland currents during times of severe magnetic field inflation also improves comparison of the RCM-computed plasmapause location with data. Results of simulations with plasma boundary sources varying in response to measured solar wind inputs show that the plasma sheet may become interchange unstable under certain geomagnetic conditions.",
keywords = "Magnetospheric physics-Simulation methods",
author = "Stanislav Sazykin and Spiro, {Robert W.} and Wolf, {Richard A.} and Toffoletto, {Frank R.} and Tsyganenko, {Nikolai A.} and J. Goldstein and Hairston, {Marc R.}",
year = "2013",
month = mar,
day = "19",
doi = "10.1029/155GM28",
language = "English",
isbn = "0875904203",
pages = "263--269",
booktitle = "The Inner Magnetosphere",
publisher = "American Geophysical Union",
address = "United States",

}

RIS

TY - CHAP

T1 - Modeling Inner Magnetospheric Electric Fields

T2 - Latest Self-Consistent Results

AU - Sazykin, Stanislav

AU - Spiro, Robert W.

AU - Wolf, Richard A.

AU - Toffoletto, Frank R.

AU - Tsyganenko, Nikolai A.

AU - Goldstein, J.

AU - Hairston, Marc R.

PY - 2013/3/19

Y1 - 2013/3/19

N2 - This paper presents some of the latest results of self-consistent numerical modeling of large-scale inner-magnetospheric electric fields obtained with the Rice Convection Model (RCM). The RCM treats plasma drifts, electric fields, and currents in the inner magnetosphere self-consistently in the quasi-static (slow-flow) approximation under the assumption of isotropic pitch-angle distribution. Event simulations of the magnetic storm of March 31, 2001 are used with two newly available RCM input models: an empirical model of the storm-time magnetospheric magnetic field, and an empirical model of the plasma sheet. Results show that the effect of severe distortion of the magnetic field during very large magnetic storms improves the ability of the RCM to predict the location of Sub-Auroral Polarization Stream (SAPS) events, although there is not perfect agreement with observations. Weakening of shielding by region-2 Birkeland currents during times of severe magnetic field inflation also improves comparison of the RCM-computed plasmapause location with data. Results of simulations with plasma boundary sources varying in response to measured solar wind inputs show that the plasma sheet may become interchange unstable under certain geomagnetic conditions.

AB - This paper presents some of the latest results of self-consistent numerical modeling of large-scale inner-magnetospheric electric fields obtained with the Rice Convection Model (RCM). The RCM treats plasma drifts, electric fields, and currents in the inner magnetosphere self-consistently in the quasi-static (slow-flow) approximation under the assumption of isotropic pitch-angle distribution. Event simulations of the magnetic storm of March 31, 2001 are used with two newly available RCM input models: an empirical model of the storm-time magnetospheric magnetic field, and an empirical model of the plasma sheet. Results show that the effect of severe distortion of the magnetic field during very large magnetic storms improves the ability of the RCM to predict the location of Sub-Auroral Polarization Stream (SAPS) events, although there is not perfect agreement with observations. Weakening of shielding by region-2 Birkeland currents during times of severe magnetic field inflation also improves comparison of the RCM-computed plasmapause location with data. Results of simulations with plasma boundary sources varying in response to measured solar wind inputs show that the plasma sheet may become interchange unstable under certain geomagnetic conditions.

KW - Magnetospheric physics-Simulation methods

UR - http://www.scopus.com/inward/record.url?scp=84953714582&partnerID=8YFLogxK

U2 - 10.1029/155GM28

DO - 10.1029/155GM28

M3 - Chapter

AN - SCOPUS:84953714582

SN - 0875904203

SN - 9780875904207

SP - 263

EP - 269

BT - The Inner Magnetosphere

PB - American Geophysical Union

ER -

ID: 28235346