HR: 1340h
AN: P23A-0250 [Abstracts]
TI: MESSENGER: The Discovery Mission to Mercury
AU: * McNutt, R L
EM: ralph.mcnutt@jhuapl.edu
AF: The Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Solomon, S C
AF: Department of Terrestrial Magnetism, Carnegie Institution of Washington, 5241 Broad Branch Road, N.W.,
Washington, DC 20015
United States
AU: Gold, R E
AF: The Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Domingue, D L
AF: The Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AB:
NASA's MErcury, Surface, Space ENvironment, GEochenistry, and Ranging (MESSENGER) spacecraft, launched on 3 August 2004, has
begun its voyage to initiate a new era in our understanding of the terrestrial planets. The mission, spacecraft, and payload
are designed to answer six fundamental questions regarding the innermost planet: What planetary formational processes led to
Mercury's high metal/silicate ratio? What is the geological history of Mercury? What are the nature and origin of Mercury's
magnetic field? What are the structure and state of Mercury's core? What are the radar-reflective materials at Mercury's
poles? What are the important volatile species and their sources and sinks on and near Mercury? Planet formational hypotheses
will be tested by measuring the surface abundances of major elements by X-ray and gamma-ray spectrometry. The geological
history will be determined from high-resolution color imaging of the heavily cratered highlands, intercrater plains, and
smooth plains. MESSENGER will provide detailed views of both the Caloris basin and its antipodal terrain. Topographic,
mineralogical, and elemental abundance data will be used to seek evidence of volcanic features and units. Measurement of
Mercury's magnetic field and its interaction with the solar wind will distinguish the intrinsic dipole and quadrupole
components while separating these from the current systems driven by solar-wind-induced convection. The structure of the
internal field will put constraints on dynamo models. Such models will also be constrained by measuring Mercury's libration
to determine the extent of a fluid outer core. Both water ice and sulfur have been postulated as major constituents of the
high-radar-backscatter polar deposits. MESSENGER will combine gamma-ray and neutron spectrometry of the surface with
ultraviolet spectrometry and in situ particle measurements to detect both neutral and charged species originating from the
surface. Such measurements will address the sources and sinks of volatiles and their couplings with the surface on a global
basis as well as the nature of the polar deposits. To broaden scientific participation in the mission, the MESSENGER project
is working with NASA to establish a Participating Scientist Program. The MESSENGER team is also continuing its informal
interaction with members of the BepiColombo project to maximize the overall scientific return from both missions.
UR: http://messenger.jhuapl.edu
DE: 5430 Interiors (8147)
DE: 5443 Magnetospheres (2756)
DE: 5462 Polar regions
DE: 5470 Surface materials and properties
SC: Planetary Sciences [P]
MN: 2004 AGU Fall Meeting