Ring Current Morphology From MMS Observations

Author:

Tan X.1ORCID,Dunlop M. W.12ORCID,Dong X.‐C.3ORCID,Yang Y.‐Y.4ORCID,Du Y.‐S.1ORCID,Shen C.5ORCID,Russell C. T.6ORCID,Liu W.‐L.1ORCID

Affiliation:

1. School of Space and Environment Beihang University Beijing China

2. RAL_Space, STFC Didcot UK

3. Yunnan University Kunming China

4. National Institute of Natural Hazards Ministry of Emergency Management of China Beijing China

5. Harbin Institute of Technology Shenzhen China

6. Department of Earth, Planetary and Space Sciences UCLA Los Angeles CA USA

Abstract

AbstractWe directly estimate the in situ current density of the Earth’s ring current (RC) using the curlometer method and investigate its morphology using the small spatial separations and high accuracy of the Magnetospheric Multiscale mission. Through statistical analysis of data from September 2015 to the end of 2016, covering the region of 2–8 RE (Earth radius, 6,371 km), we reveal an almost complete near‐equatorial (within ) RC morphology in terms of radial distance and magnetic local time (MLT) which complements and extends that found from previous studies. We found no evidence of RC enhancement on the dusk side during geomagnetic active periods, but details of MLT asymmetries in, and the boundary between, the inner (eastward) and outer (westward) currents are revealed. We propose that part of the asymmetry demonstrated here suggests that in addition to the overall persistence of the westward RC, two large banana‐like currents are directly observed, one which could arise from a peak of plasma pressure near ∼4.8 RE on the noon side and the other from a valley of plasma pressure which could arise near ∼4.8 RE on the night side.

Funder

National Natural Science Foundation of China

Natural Environment Research Council

Science and Technology Facilities Council

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Geophysics

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