Evolution of Large-Scale Magnetic Fields From Near-Earth Space During the Last 11 Solar Cycles

被引:8
|
作者
Pick, Leonie [1 ]
Korte, Monika [1 ]
Thomas, Yannik [1 ]
Krivova, Natalie [2 ]
Wu, Chi-Ju [2 ]
机构
[1] GFZ German Res Ctr Geosci, Potsdam, Germany
[2] Max Planck Inst Solar Syst Res, Gottingen, Germany
关键词
PAST; 167; YR; INTERPLANETARY CONDITIONS; GEOMAGNETIC-ACTIVITY; MAGNETOSPHERIC CURRENTS; DATA SELECTION; DST INDEX; RECONSTRUCTION; SIGNAL; MODEL;
D O I
10.1029/2018JA026185
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We use hourly mean magnetic field measurements from 34 midlatitude geomagnetic observatories between 1900 and 2015 to investigate the long-term evolution and driving mechanism of the large-scale external magnetic field at ground. The Hourly Magnetospheric Currents index (HMC) is derived as a refinement of the Annual Magnetospheric Currents index (HMC, Pick & Korte, 2017, https://doi.org/10.1093/gji/ggx367). HMC requires an extensive revision of the observatory hourly means. It depends on three third party geomagnetic field models used to eliminate the core, the crustal, and the ionospheric solar-quiet field contributions. We mitigate the dependency of HMC on the core field model by subtracting only nondipolar components of the model from the data. The separation of the residual (dipolar) signal into internal and external (HMC) parts is the main methodological challenge. Observatory crustal biases are updated with respect to AMC, and the solar-quiet field estimation is extended to the past based on a reconstruction of solar radio flux (F10.7). We find that HMC has more power at low frequencies (periods >= 1 year) than the Dcx index, especially at periods relevant to the solar cycle. Most of the slow variations in HMC can be explained by the open solar magnetic flux. There is a weakly decreasing linear trend in absolute HMC from 1900 to present, which depends sensitively on the data rejection criteria at early years. HMC is well suited for studying long-term variations of the geomagnetic field.
引用
收藏
页码:2527 / 2540
页数:14
相关论文
共 50 条
  • [31] Evolution of the large-scale tail of primordial magnetic fields
    Jedamzik, Karsten
    Sigl, Guenter
    PHYSICAL REVIEW D, 2011, 83 (10):
  • [32] Large-scale patterns of solar magnetic field and activity cycles
    Benevolenskaya, EE
    Kosovichev, AG
    Scherrer, PH
    MAGNETIC FIELDS ACROSS THE HERTZSPRUNG-RUSSELL DIAGRAM, 2001, 248 : 135 - 138
  • [33] DECIMETER RADIORADIATION OF NEAR-EARTH SPACE DURING THE DISPLAYS OF SOLAR-ACTIVITY
    MUSATENKO, SI
    GEOMAGNETIZM I AERONOMIYA, 1980, 20 (03): : 482 - 488
  • [34] EVOLUTION OF LATITUDE ZONAL STRUCTURE OF THE LARGE-SCALE MAGNETIC-FIELD IN SOLAR-CYCLES
    MAKAROV, VI
    SIVARAMAN, KR
    SOLAR PHYSICS, 1989, 119 (01) : 35 - 44
  • [35] The interrelation between the generation of large-scale electric fields and that of large-scale magnetic fields during inflation
    Bamba, Kazuharu
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2007, (10):
  • [36] Large-scale dynamical phenomena during solar activity cycles
    Feminella, F
    Storini, M
    ASTRONOMY & ASTROPHYSICS, 1997, 322 (01) : 311 - 319
  • [37] A model of magnetic fields in a large-scale solar active region
    Ji, HS
    Song, MT
    CHINESE ASTRONOMY AND ASTROPHYSICS, 2001, 25 (01) : 97 - 110
  • [38] Effect of Large-Scale Magnetic Fields on Total Solar Irradiance
    A.V. Mordvinov
    R.C. Willson
    Solar Physics, 2003, 215 : 5 - 16
  • [39] Relevance of CME to the structure of large-scale solar magnetic fields
    Ivanov, EV
    Obridko, VN
    Nepomnyashchaya, EV
    Kutilina, NV
    SOLAR PHYSICS, 1999, 184 (02) : 369 - 384
  • [40] NUMERICAL SIMULATIONS OF LARGE-SCALE SOLAR MAGNETIC FIELDS.
    DeVore, C.R.
    Sheeley, N.R.
    Boris, J.P.
    Young, T.R.
    Harvey, K.L.
    Australian Journal of Physics, 1985, 38 (06): : 999 - 1007