HR: 0800h
AN: SM31A-0387 [Abstracts]
TI: Locating Substorm Onsets by Pi 2 Travel Time
AU: * Chi, P J
EM: pchi@igpp.ucla.edu
AF: UCLA, IGPP,
595 Young Drive East, Los Angeles, CA 90095-1567
United States
AU: Ohtani, S -
EM: shin.ohtani@jhuapl.edu
AF: JHU/APL, 11100 Johns Hopkins Rd., Laurel, MD 20723
United States
AU: Russell, C T
EM: ctrussell@igpp.ucla.edu
AF: UCLA, IGPP,
595 Young Drive East, Los Angeles, CA 90095-1567
United States
AU: Singer, H J
EM: howard.singer@noaa.gov
AF: NOAA, Space Environment Center,
325 Broadway, Boulder, CO 80305
United States
AB:
If Pi 2 arrival times observed by multiple satellites and ground stations can be used to infer the location of substorm
onset, they could be used to constrain substorm models. The methodology is analogous to locating earthquake hypocenters from
the travel time data recorded by an array of seismometers. The Pi 2 travel-time method times the arrival of Pi 2 when the
amplitude of its first half cycle reaches maximum, a time corresponding to wave propagation along the ``Tamao travel path,''
which consists of the nearest route from the source to the field line of interest via the fast mode and a segment of
field-aligned propagation to the observer via the Alfvén mode. The time that Pi 2 takes to propagate along the Tamao
travel path can therefore be estimated by modeling the MHD speeds along the path. We have developed a model of Alfvén and
magnetosonic speeds based on the empirical Tsyganenko 1989 magnetosphere model and the observations of plasma density and
temperature as those reported by Baumjohann [1993] and by Wing and Newell [1998]. The ratio of the magnetosonic speed to the
Alfvén speed can range from 3 to more than 10 near the central plasma sheet due to the high β in the region, and
therefore the travel time along the Tamao path is primarily controlled by the Alfvénic portion of the propagation. For
substorm onsets that are located farther than X = -12 Re, the Tamao's travel time for Pi 2 propagating from the source to a
ground observer varies with the observer's L-value, and it has a local minimum at L ~ 10 and a local maximum at L =
12-20, depending on the source location. The variation in Pi 2 travel time also increases as the onset location moves away
from the Earth. Using the data from ground magnetometer arrays in North America as well as those from GOES and Geotail
satellites, we analyzed several Pi 2 events and found that their travel time pattern was in good agreement with a location of
substorm onset is at approximately at 12-15 Re downtail. Applications of this travel-time method on THEMIS satellite and
ground-based data would further illuminate the dynamics of substorms and bursty bulk flows.
DE: 2149 MHD waves and turbulence (2752, 6050, 7836)
DE: 2744 Magnetotail
DE: 2764 Plasma sheet
DE: 2790 Substorms
DE: 2794 Instruments and techniques
SC: SPA-Magnetospheric Physics [SM]
MN: Fall Meeting 2005