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Multi-spacecraft tracing of turbulent boundary layer
Authors:S Savin  L Zelenyi  N Maynard  I Sandahl  H Kawano  C T Russell  S Romanov  E Amata  L Avanov  J Blecki  J Buechner  G Consolini  G Gustafsson  S Klimov  F Marcucci  Z Nemecek  B Nikutowski  J Pickett  J L Rauch  J Safrankova  A Skalsky  V Smirnov  K Stasiewicz  P Song  J G Trotignon  Yu Yermolaev
Institution:

a Space Research Institute, Russian Academy of Sciences, Profsoyuznaya 84/32, Moscow, 117810, Russia

b Mission Res. Corp, Nashua, NH, USA

c Swedish Inst. Space Physics, Kiruna, Sweden

d Kyushu U., Japan

e IGPP, UCLA, Los Angeles, CA, USA

f Interplanetary Space Phys. Inst., CNR, Roma, Italy

g Max-Planck Inst. Aeronomie, Katlenburg-Lindau, Germany

h Faculty Math. Phys., Charles U., Praha, Czech Republic

i Space Res. Center, Polish Academy Sci., Warsaw, Poland

j U. Iowa, USA

k Laboratory Phys. & Chemistry Environment, Orleans, France

l IRF-U, Uppsala, Sweden

m University of Massachusetts at Lowell, Lowell, MA, USA

Abstract:Multi-spacecraft tracing of the high latitude magnetopause (MP) and boundary layers and Interball-1 statistics indicate that:
1. (a) The turbulent boundary layer (TBL) is a persistent feature in the region of the cusp and ‘sash’, a noticeable part of the disturbances weakly depends on the interplanetary magnetic field By component; TBL is a major site for magnetosheath (MSH) plasma penetration inside the magnetosphere through percolation and local reconnection.
2. (b) The TBL disturbances are mainly inherent with the characteristic kinked double-slope spectra and, most probably, 3-wave cascading. The bi-spectral phase coupling indicates self-organization of the TBL as the entire region with features of the non-equilibrium multi-scale and multi-phase system in the near-critical state.
3. (c) We've found the different outer cusp topologies in summer/winter periods: the summer cusp throat is open for the decelerated MSH flows, the winter one is closed by the distant MP with a large-scale (several Re) diamagnetic ‘plasma ball’ inside the MP; the ‘ball’ is filled from MSH through patchy merging rather than large-scale reconnection.
4. (d) A mechanism for the energy release and mass inflow is the local TBL reconnection, which operates at the larger scales for the average anti-parallel fields and at the smaller scales for the nonlinear fluctuating fields; the latter is operative throughout the TBL. The remote from TBL anti-parallel reconnection seems to happen independently.

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