The geopause
- 1 May 1995
- journal article
- Published by American Geophysical Union (AGU) in Reviews of Geophysics
- Vol. 33 (2) , 175-209
- https://doi.org/10.1029/95rg00872
Abstract
Coupled to the Earth and protected by the geomagnetic field, terrestrial matter in the plasma state dominates a larger region of space than was suspected when the “space age” began, a region we refer to as the geosphere. Accelerated and heated by solar wind energy, this matter expands in size and increases in mass density in response to the Sun's ultraviolet spectrum, heliospheric conditions, and the occurrence of severe space storms. Such storms regularly damage spacecraft, interfere with communications, and trigger power grid interruptions or failures. They occur within the geopause region, that is, the volume defined by the limits of the instantaneous boundary between plasmas that are primarily heliospheric and geospheric. The geopause is analogous in some ways to the heliopause but also resembles the terrestrial air‐sea interface. It is the boundary layer across which the supersonically expanding solar plasma delivers momentum and energy to the terrestrial plasma and gas, exciting them into motion, “evaporating” them into space, and dissipating considerable amounts of power in thermal forms, while generating energetic particles through repeated storage and explosive release of electromagnetic energy. The intensity of the solar wind and the orientation of its magnetic field jointly control the strength of the coupling between solar and terrestrial plasmas and hence the occurrence of severe storms in the geopause region.Keywords
This publication has 167 references indexed in Scilit:
- Statistical survey of pitch angle distributions in core (0‐50 eV) ions from Dynamics Explorer, 1: Outflow in the auroral zone, polar cap, and cuspJournal of Geophysical Research, 1994
- Characteristics of ion flow in the quiet state of the inner plasma sheetGeophysical Research Letters, 1993
- Tailward propagating cross‐tail current disruption and dynamics of near‐Earth Tail: A multi‐point measurement analysisGeophysical Research Letters, 1993
- Anisotropic magnetotail equilibrium and convectionGeophysical Research Letters, 1993
- Modeling the growth phase of a substorm using the Tsyganenko Model and multi‐spacecraft observations: CDAW‐9Geophysical Research Letters, 1991
- Gyro-phase effects near the storm-time boundary of energetic plasmaGeophysical Research Letters, 1991
- Thermal energization of ions during impulsive field eventsGeophysical Research Letters, 1990
- Simulation of ion heating in the topside auroral ionosphereGeophysical Research Letters, 1988
- An event of distinct ion polar rainGeophysical Research Letters, 1988
- Charge state distributions of oxygen and carbon in the energy range 1 to 300 keV/E observed with AMPTE/CCE in the magnetosphereGeophysical Research Letters, 1985