journal article Apr 09, 2017

Magnetospheric balance of solar wind dynamic pressure

View at Publisher Save 10.1002/2017gl072817
Abstract
AbstractThe magnetopause is the boundary established by pressure balance between the solar wind flow in the magnetosheath and the magnetosphere. Generally, this pressure balance is represented to be between the solar wind, the dynamic pressure, and the magnetic pressure of Earth's dipole field. The plasma actually in contact with the magnetosphere is the slowed, compressed, and heated solar wind downstream of the shock. The force exerted on the magnetosheath plasma is the J × B force produced by the Chapman‐Ferraro current that flows on the magnetopause. Under typical solar wind conditions of relatively high magnetosonic Mach number flow (>6), this simple picture is a reasonable description of the situation. However, under conditions of low solar wind magnetosonic Mach number flow (~2) the force on the solar wind plasma is not exerted at the magnetopause and must be exerted at the bow shock by currents that connect to the Region 1 currents. In this paper we present observations from two magnetopause crossings observed by the Time History of Events and Macroscale Interactions during Substorms spacecraft to compare and contrast the force balance with the solar wind for two situations with very different solar wind magnetosonic Mach numbers.
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15
Citations
20
References
Details
Published
Apr 09, 2017
Vol/Issue
44(7)
Pages
2991-2999
License
View
Funding
National Aeronautics and Space Administration Award: NNX15AJ03G
Fundação de Amparo a Pesquisa do Estado de São Paulo Award: 2012/066734
Cite This Article
Ramon E. Lopez, Walter D. Gonzalez (2017). Magnetospheric balance of solar wind dynamic pressure. Geophysical Research Letters, 44(7), 2991-2999. https://doi.org/10.1002/2017gl072817
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