HR: 0800h
AN: SM51A-0334 [Abstracts]
TI: Comparisons of Thermal Electron Measurements on Two Sounding Rocket Experiments
AU: * MacDonald, E A
EM: elizabeth.macdonald@unh.edu
AF: Space Science Center, University of New Hampshire, Durham,, NH 03820
United States
AU: Lynch, K A
EM: kristina.lynch@dartmouth.edu
AF: Dept. of Physics and Astronomy, Dartmouth College, Hanover, NH 03755
United States
AU: Arnoldy, R
EM: roger.arnoldy@unh.edu
AF: Space Science Center, University of New Hampshire, Durham,, NH 03820
United States
AU: Widholm, M
EM: mark.widholm@unh.edu
AF: Space Science Center, University of New Hampshire, Durham,, NH 03820
United States
AU: Kintner, P
EM: paul@ece.cornell.edu
AF: Dept. of Electrical and Computer Engineering, Cornell University, Ithaca, NY 14850
United States
AU: Klatt, E
EM: ek59@cornell.edu
AF: Dept. of Electrical and Computer Engineering, Cornell University, Ithaca, NY 14850
United States
AU: LaBelle, J
EM: james.labelle@dartmouth.edu
AF: Dept. of Physics and Astronomy, Dartmouth College, Hanover, NH 03755
United States
AU: Samara, M
EM: marilia@dartmouth.edu
AF: Dept. of Physics and Astronomy, Dartmouth College, Hanover, NH 03755
United States
AB:
Thermal electron instruments built by the University of New Hampshire have
accompanied standard instrumentation flown on a series of two sounding
rocket flights, SIERRA and SERSIO. In 2002, SIERRA was launched from Poker
Flat Research Range, Alaska, to 735 km into a modest substorm. The
instrument response of the thermal electron detector (TED) has been
studied extensively (MacDonald et al., 2004). The TED design featured a
pinhole electrostatic analyzer designed to detect the flux and energy
distribution of the coldest ambient ionospheric electrons. Despite
positive biasing the instrument exhibited formation of a potential barrier
restricting access to the thermal core. Using coincident data from other
instruments information about the thermal plasma temperature, density, and
spacecraft potential can be reconstructed. These data and the theories
developed to examine them can be studied in conjunction with the next
flight. In 2004, SERSIO was launched from Svalbard, Norway to 790 km in
intense cusp ion outflow at the beginning of a geomagnetic storm. This
payload contained two different designs for measuring thermal electrons
and two identical but orthogonal top-hat thermal ion analyzers. In
addition to the TED, another new instrument, the ERPA, was developed for
detecting thermal electrons via a retarding potential current collector.
On the TED, the bias sweep and coating were altered to improve
performance. The SERSIO payload flew into sunlight whereas the previous
flight was in darkness which greatly changes the nature of the payload
current balance situation. Unfortunately SERSIO data was severely limited
by mechanical problems which affected instrument deployment and
orientation but it is still useful for this purpose. Extensive
ground-based radar observations should prove useful for facilitating
quantitative comparisons. The performances of the two TEDs are contrasted
with the aim of identifying differences due to changes in internal
instrumental parameters versus external environment parameters. Also, the
two different thermal electron designs on SERSIO, the TED and the ERPA can
be compared. Finally, this payload allows a complete comparison between
ground-based thermal parameters and their in-situ electron and ion
counterparts. This work should help us to understand more about the true
nature of the potential sheath around a rocket, necessary for successful
direct measurement of ionospheric thermal electrons.
DE: 2407 Auroral ionosphere (2704)
DE: 2431 Ionosphere/magnetosphere interactions (2736)
DE: 2455 Particle precipitation
DE: 2467 Plasma temperature and density
DE: 2494 Instruments and techniques
SC: SPA-Magnetospheric Physics [SM]
MN: 2004 AGU Fall Meeting