2015/11/10 by N. Y. Ganushkina, Natalia Ganushkina, M. W. Liemohn +25 · 83 citations
Biochemistry, Genetics and Molecular Biology · Earth and Planetary Sciences · Physics and Astronomy · #Computational physics #Current (fluid) #Earthquake Detection and Analysis #Geomagnetism and Paleomagnetism Studies #Geophysics #Ionosphere #Ionosphere and magnetosphere dynamics #Latitude #Magnetic field #Magnetopause #Magnetosphere #Physics #Ring current #Substorm #Topology (electrical circuits) #physics.space-ph
paper · pdf · doi:10.5194/angeo-33-1369-2015
published in Annales Geophysicae 33(11), 1369-1402 (Copernicus Publications)
openalex publication_date 2015/11/10 · arxiv created 2017/01/17 · arxiv updated 2017/01/18 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06
Abstract. Electric currents flowing through near-Earth space (R ≤ 12 RE) can support a highly distorted magnetic field topology, changing particle drift paths and therefore having a nonlinear feedback on the currents themselves. A number of current systems exist in the magnetosphere, most commonly defined as (1) the dayside magnetopause Chapman–Ferraro currents, (2) the Birkeland field-aligned currents with high-latitude "region 1" and lower-latitude "region 2" currents connected to the partial ring current, (3) the magnetotail currents, and (4) the symmetric ring current. In the near-Earth nightside region, however, several of these current systems flow in close proximity to each other. Moreover, the existence of other temporal current systems, such as the substorm current wedge or "banana" current, has been reported. It is very difficult to identify a local measurement as belonging to a specific system. Such identification is important, however, because how the current closes and how these loops change in space and time governs the magnetic topology of the magnetosphere and therefore controls the physical processes of geospace. Furthermore, many methods exist for identifying the regions of near-Earth space carrying each type of current. This study presents a robust collection of these definitions of current systems in geospace, particularly in the near-Earth nightside magnetosphere, as viewed from a variety of observational and computational analysis techniques. The influence of definitional choice on the resulting interpretation of physical processes governing geospace dynamics is presented and discussed.