SUBSTORM CURRENTS IN THE EQUATORIAL MAGNETOTAIL

Citation
T. Iijima et al., SUBSTORM CURRENTS IN THE EQUATORIAL MAGNETOTAIL, J GEO R-S P, 98(A10), 1993, pp. 17283-17298
Citations number
22
Categorie Soggetti
Geosciences, Interdisciplinary","Astronomy & Astrophysics","Metereology & Atmospheric Sciences
Journal title
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS
ISSN journal
21699380 → ACNP
Volume
98
Issue
A10
Year of publication
1993
Pages
17283 - 17298
Database
ISI
SICI code
2169-9380(1993)98:A10<17283:SCITEM>2.0.ZU;2-W
Abstract
We have determined characteristics of magnetospheric equatorial curren ts during substorms from the vector magnetic field data acquired with the GOES 5 and GOES 6 satellites, separated about 1.9 hours in MLT in geosynchronous orbit. These data have been used to determine the local time (azimuthal) and radial variation of the equatorial current. The divergence of the equatorial current was computed from these variation s, and systems of field-aligned currents were deduced. During the grow th phase to the maximum phase of the taillike reconfiguration of the n ear-Earth magnetic field, a positive divergence (away from the equator ial plane) of the westward equatorial current occurs in the late eveni ng to premidnight MLT sector, and a negative divergence (away from the equatorial plane) occurs in the premidnight to early morning MLT sect or. The field-aligned current associated with these divergences flows into the ionosphere in the late evening to premidnight MLT sector and flows away from the ionosphere in the premidnight to early morning MLT sector. This flow direction pattern is the same as that of the region 2 field-aligned current system. During the expansion phase a field-al igned current that is distinctive to the growth phase field-aligned cu rrent is generated in the same near-Earth plasma sheet region. The fie ld-aligned current flows away from the ionosphere in the late evening to premidnight MLT sector and flows into the ionosphere in the premidn ight to morning MLT sector. These field-aligned currents are due to a change in a sign of the divergence of the westward equatorial current. This flow direction pattern is same as that of the region 1 field-ali gned current system and also of the current-wedge model. This region 1 sense field-aligned current develops first near midnight at about 5 m in after the expansion phase onset (as determined from the ground-base d magnetometer data), is delayed by 10-25 min farther away from midnig ht in the evening and morning MLTs, and continues until the end of geo magnetic dipolarization at the site of either GOES 5 or GOES 6, whiche ver is located closer to midnight. We have also determined the presenc e of a radial current that flows toward the earth in the late evening to premidnight sector and flows away from the Earth in the midnight to morning sector. The intensity of the radial currents increases before the expansion phase. Consequently, the patterns of field-aligned curr ents associated with various substorm phases are the superposition of currents driven by multiple sources with different temporal variations . We have identified at least three different, but related sources of field-aligned currents during the growth and expansion phases. These s ources are related to the divergence of the westward flowing equatoria l current and to distributions of pressure and magnetic field gradient s that evolve in the magnetotail. These patterns include the current-w edge model during the expansion phase. When combined, these complicate d systems support the basic region 1 to region 2 field-aligned current flow pattern.