Importance of lower atmospheric forcing and magnetosphere-ionosphere coupling in simulating neutral density during the February 2016 geomagnetic storm

被引:3
作者
Maute, Astrid [1 ]
Lu, Gang [1 ]
Knipp, Delores J. [1 ,2 ]
Anderson, Brian J. [3 ]
Vines, Sarah K. [3 ]
机构
[1] High Altitude Observ, Natl Ctr Atmospher Res, Boulder, CO 80301 USA
[2] Univ Colorado, Ann & HJ Smead Aerosp Engn Sci, Boulder, CO USA
[3] Johns Hopkins Univ, Appl Phys Lab, Laurel, MD USA
来源
FRONTIERS IN ASTRONOMY AND SPACE SCIENCES | 2022年 / 9卷
基金
美国国家科学基金会;
关键词
neutral density; Swarm-C; TIEGCM model; lower atmosphere; geomagnetic storm; field-aligned current forcing; BIRKELAND CURRENTS; MODEL; THERMOSPHERE; CIRCULATION; TRANSPORT; IMPACT; SOLAR;
D O I
10.3389/fspas.2022.932748
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
During geomagnetic storms a large amount of energy is transferred into the ionosphere-thermosphere (IT) system, leading to local and global changes in e.g., the dynamics, composition, and neutral density. The more steady energy from the lower atmosphere into the IT system is in general much smaller than the energy input from the magnetosphere, especially during geomagnetic storms, and therefore details of the lower atmosphere forcing are often neglected in storm time simulations. In this study we compare the neutral density observed by Swarm-C during the moderate geomagnetic storm of 31 January to 3 February 2016 with the Thermosphere-Ionosphere-Electrodynamics-GCM (TIEGCM) finding that the model can capture the observed large scale neutral density variations better in the southern than northern hemisphere. The importance of more realistic lower atmospheric (LB) variations as specified by the Whole Atmosphere Community Climate Model eXtended (WACCM-X) with specified dynamics (SD) is demonstrated by improving especially the northern hemisphere neutral density by up to 15% compared to using climatological LB forcing. Further analysis highlights the importance of the background atmospheric condition in facilitating hemispheric different neutral density changes in response to the LB perturbations. In comparison, employing observationally based field-aligned current (FAC) versus using an empirical model to describe magnetosphere-ionosphere (MI) coupling leads to an 7-20% improved northern hemisphere neutral density. The results highlight the importance of the lower atmospheric variations and high latitude forcing in simulating the absolute large scale neutral density especially the hemispheric differences. However, focusing on the storm time variation with respect to the quiescent time, the lower atmospheric influence is reduced to 1-1.5% improvement with respect to the total observed neutral density. The results provide some guidance on the importance of more realistic upper boundary forcing and lower atmospheric variations when modeling large scale, absolute and relative neutral density variations.
引用
收藏
页数:18
相关论文
共 56 条
  • [1] Development of large-scale Birkeland currents determined from the Active Magnetosphere and Planetary Electrodynamics Response Experiment
    Anderson, B. J.
    Korth, H.
    Waters, C. L.
    Green, D. L.
    Merkin, V. G.
    Barnes, R. J.
    Dyrud, L. P.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2014, 41 (09) : 3017 - 3025
  • [2] Sensing global Birkeland currents with Iridium® engineering magnetometer data
    Anderson, BJ
    Takahashi, K
    Toth, BA
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (24) : 4045 - 4048
  • [3] Properties of traveling atmospheric disturbances (TADs) inferred from CHAMP accelerometer observations
    Bruinsma, Sean L.
    Forbes, Jeffrey M.
    [J]. ADVANCES IN SPACE RESEARCH, 2009, 43 (03) : 369 - 376
  • [4] Theoretical study: Influence of different energy sources on the cusp neutral density enhancement
    Deng, Yue
    Fuller-Rowell, Timothy J.
    Ridley, Aaron J.
    Knipp, Delores
    Lopez, Ramon E.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2013, 118 (05) : 2340 - 2349
  • [5] Impact of the altitudinal Joule heating distribution on the thermosphere
    Deng, Yue
    Fuller-Rowell, Timothy J.
    Akmaev, Rashid A.
    Ridley, Aaron J.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2011, 116
  • [6] Emery B., 2012, PARAMETERIZATION ION, DOI [10.5065/D6N29TXZ, DOI 10.5065/D6N29TXZ]
  • [7] NRLMSIS 2.0: A Whole-Atmosphere Empirical Model of Temperature and Neutral Species Densities
    Emmert, J. T.
    Drob, D. P.
    Picone, J. M.
    Siskind, D. E.
    Jones, M., Jr.
    Mlynczak, M. G.
    Bernath, P. F.
    Chu, X.
    Doornbos, E.
    Funke, B.
    Goncharenko, L. P.
    Hervig, M. E.
    Schwartz, M. J.
    Sheese, P. E.
    Vargas, F.
    Williams, B. P.
    Yuan, T.
    [J]. EARTH AND SPACE SCIENCE, 2021, 8 (03)
  • [8] Thermospheric mass density: A review
    Emmert, J. T.
    [J]. ADVANCES IN SPACE RESEARCH, 2015, 56 (05) : 773 - 824
  • [9] Quantifying the Storm Time Thermospheric Neutral Density Variations Using Model and Obeservations
    Eyiguler, E. Ceren Kalafatoglu
    Shim, J. S.
    Kuznetsova, M. M.
    Kaymaz, Z.
    Bowman, B. R.
    Codrescu, M., V
    Solomon, S. C.
    Fuller-Rowell, T. J.
    Ridley, A. J.
    Mehta, P. M.
    Sutton, E. K.
    [J]. SPACE WEATHER-THE INTERNATIONAL JOURNAL OF RESEARCH AND APPLICATIONS, 2019, 17 (02): : 269 - 284
  • [10] Eyiguler ECK, 2019, 2019 9TH INTERNATIONAL CONFERENCE ON RECENT ADVANCES IN SPACE TECHNOLOGIES (RAST), P663, DOI [10.1109/rast.2019.8767867, 10.1109/RAST.2019.8767867]