HR: 1340h
AN: SA53B-1166 [Abstracts]
TI: Observation of Auroral-like Peaked Electron Distributions at Mars
AU: * Brain, D A
EM: brain@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Halekas, J S
EM: jazzman@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Fillingim, M O
EM: matt@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Lillis, R J
EM: rlillis@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Peticolas, L M
EM: lmp@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Lin, R P
EM: boblin@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Luhmann, J G
EM: jgluhman@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Mitchell, D L
EM: mitchell@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Delory, G T
EM: gdelory@ssl.berkeley.edu
AF: UC Berkeley Space Sciences Lab, 7 Gauss Way, Berkeley, CA 94720
United States
AU: Acuna, M H
EM: mario.acuna@gsfc.nasa.gov
AF: NASA GSFC, NASA Goddard Space Flight Center, Greenbelt, MD 20771
United States
AB:
Aurorae have been observed throughout the solar system and are associated with regions where charged particles have access to
an atmosphere along magnetic field lines. Though aurorae are most prominent on planets with global dipole magnetic fields
(like Earth and Jupiter), the Mars Express spacecraft recently reported localized UV auroral emission at Mars, which lacks a
global dipole but has strong crustal magnetic fields. The particles and mechanisms responsible for emission in this
non-dipolar environment have not been previously identified, and their relation to aurorae elsewhere in the solar system is
an important open question.
In this presentation, we report nearly 13,000 observations by the Mars Global Surveyor MAG/ER experiment of auroral-like
electron distributions which result in enhanced electron precipitation into the Martian atmosphere. The energy spectra are
peaked at 0.1--3~keV, very similar to terrestrial auroral electrons. We find that they are observed either on magnetic field
lines that connect the shocked solar wind to localized strong crustal magnetic fields or on adjacent closed field lines.
Accelerated electrons are often associated with magnetic field rotations and electromagnetic wave activity in MGS data. Many
of the spectra are capable of producing atmospheric emission with intensity comparable to the reported UV emission.
External conditions control whether acceleration is likely to be observed by MGS, including the orientation of the solar wind
magnetic field, solar wind pressure, and the orientation of Mars with respect to the solar wind flow. This direct solar
wind control is similar to terrestrial cusp aurorae. Further, both the reported Mars Express emisison and many of the most
energetic distributions occur during the passage of solar energetic particle events through the Martian system, suggesting
that the enhanced particle fluxes and disturbed magnetic environment during solar storm contribute to the most intense
emission.
DE: 2780 Solar wind interactions with unmagnetized bodies
DE: 5408 Aurorae and airglow
DE: 5421 Interactions with particles and fields
DE: 6225 Mars
DE: 7807 Charged particle motion and acceleration
SC: SPA-Aeronomy [SA]
MN: Fall Meeting 2005