HR: 0830h
AN: P31B-1056 [PDF]
TI: Investigating Impact Crater Related Surficial Deposits on Venus With Arecibo Multi-Polarization Radar
Images
AU: * Carter, L M
EM: lcarter@astro.cornell.edu
AF: Cornell University, Space Sciences Building
Cornell University, Ithaca, NY 14853 United States
AU: Campbell, D B
EM: campbell@astro.cornell.edu
AF: Cornell University, Space Sciences Building
Cornell University, Ithaca, NY 14853 United States
AU: Campbell, B A
EM: campbellb@nasm.si.edu
AF: Smithsonian Institution, Center for Earth and Planetary Studies
Smithsonian Institution, Washington DC, 20560 United States
AU: Margot, J
EM: margot@gps.caltech.edu
AF: California Institute of Technology, Department of Geological and Planetary Sciences
California Institute of Technology, Pasadena, CA 91125 United States
AB:
Magellan spacecraft images of Venus revealed several different types of impact crater related deposits on Venus. Examples
include the hundreds of kilometers in length parabolic-shaped deposits and the smaller (tens of km) dark halos. Wind streaks
are associated with some of these features, confirming the presence of mantling material. These areas on Venus may look
significantly different at optical wavelengths, since radar can penetrate several wavelengths into the surface and reveal
underlying terrain. Linear polarization analysis can be used to investigate whether there is a surficial deposit in a given
region. A circularly polarized wave can be decomposed into two orthogonal linear-polarized waves of equal magnitude. If a
circularly polarized radar signal penetrates into a surface that is smooth at wavelength scales, and is scattered by embedded
rocks or a sub-surface layer, the received echo will have a linear-polarized component. This linear polarization is produced
because the "horizontal" and "vertical" components of the incident circular wave have different transmission coefficients
into and out of the surface layer. If there is no sub-surface reflection, there will be no linear polarization. We used the
13-cm wavelength Arecibo radar system to observe Venus during two inferior conjunctions. We transmitted a circularly
polarized wave and received both of the reflected circular polarizations. From these data, delay-Doppler images in all four
Stokes polarization parameters were created, and a map of the degree of linear polarization was formed. Our data reveals
linear polarization associated with impact craters, volcanic
dome fields, and areas of wind streaks. In particular, we note significant
linear polarization from areas near 44 craters, including 5 of the craters with parabolic deposits. The linear polarization
signature is usually
associated with the diffuse, featureless radar-bright areas near the crater. In addition, the craters that show a linearly
polarized echo component often have dark halos or bright floors, and thus are likely be younger in age. This technique can be
used for other objects as well, including possibly determining whether there is regolith covering the polar ice deposits on
Mercury and searching for regolith on asteroids.
DE: 5420 Impact phenomena (includes cratering)
DE: 5470 Surface materials and properties
DE: 6295 Venus
DE: 6949 Radar astronomy
DE: 6969 Remote sensing
SC: Planetary Sciences [P]
MN: 2003 Fall Meeting