HR: 0800h
AN: SH51C-0289 [Abstracts]
TI: Dissipation Range Observations in Interplanetary Magnetic Clouds
AU: Hamilton, K
EM: hamilton@briaxa.sr.unh.edu
AF: Physics Department, University of New Hampshire, Durham, NH 03824
United States
AU: * Smith, C W
EM: Charles.Smith@unh.edu
AF: Space Science Center, Morse Hall,
University of New Hampshire, Durham, NH 03824
United States
AU: Leamon, R J
EM: leamon@grace.nascom.nasa.gov
AF: L-3 Communications/GSI, NASA/Goddard Space Flight Center, Greenbelt, MD 20771
United States
AB:
In two earlier papers Leamon et al. [1998a,b] examined the properties of the dissipation range for interplanetary magnetic
fluctuations at 1 AU. In the first paper they focused on 33 1-hour samples of open field line measurements chosen without
any regard for context other than being
sufficiently well-behaved for sufficient time to yield good spectra. All 33 intervals were chosen from WIND/MFI measurements
in the solar wind near 1 AU. They found that the dissipation range typically set in at frequencies slightly greater than
the proton cyclotron frequency, had
consistently steeper forms than the associated inertial range spectra with power law indexes generally between -3 and -5,
were consistently more compressive than the inertial range, and possessed wave vectors more nearly field aligned than in the
inertial range. In the second paper they chose to examine intervals from within a single magnetic cloud. They found that
the cloud spectra showed generally less steepening in the dissipation range than did the open field line examples. Inertial
range fluctuations were significantly less compressive in the cloud examples. Very little energy was seen to reside with
wave vectors parallel to the mean magnetic field in either the inertial or dissipation ranges. We have examined 30
additional magnetic clouds observed by ACE in order to develop a more statistically significant characterization of magnetic
cloud dissipation range spectra near 1 AU. We find that the Leamon results characterize
frequently observed aspects of cloud spectra, but that they constitute a common example within a range of possible results.
In an effort to better understand the in situ heating of magnetic clouds, we present the statistics we have gathered and
compare these results with typical open field line observations.
Leamon et al., JGR, A103, 4775--4787, 1998a
Leamon et al., GRL, 25, 2505--2509, 1998b
DE: 2134 Interplanetary magnetic fields
DE: 2149 MHD waves and turbulence
DE: 2152 Pickup ions
DE: 2164 Solar wind plasma
SC: SPA-Solar and Heliospheric Physics [SH]
MN: 2004 AGU Fall Meeting