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Latest Paper:
H Sierks,
P Lamy,
C Barbieri,
D Koschny,
H Rickman,
R Rodrigo,
M F A'Hearn,
F Angrilli,
M A Barucci,
J-L Bertaux,
I Bertini,
S Besse,
B Carry,
G Cremonese,
V Da Deppo,
B Davidsson,
S Debei,
M De Cecco,
J De Leon,
F Ferri,
S Fornasier,
M Fulle,
S F Hviid,
R W Gaskell,
O Groussin,
P Gutierrez,
W Ip,
L Jorda,
M Kaasalainen,
H U Keller,
J Knollenberg,
R Kramm,
E Kührt,
M Küppers,
L Lara,
M Lazzarin,
C Leyrat,
J J Lopez Moreno,
S Magrin,
S Marchi,
F Marzari,
M Massironi,
H Michalik,
R Moissl,
G Naletto,
F Preusker,
L Sabau,
W Sabolo,
F Scholten,
C Snodgrass,
N Thomas,
C Tubiana,
P Vernazza,
J-B Vincent,
K-P Wenzel,
T Andert,
M Pätzold,
B P Weiss
Max-Planck-Institut für Sonnensystemforschung, Max-Planck-Strasse 2, 37191 Katlenburg-Lindau, Germany. sierks@mps.mpg.de
Images obtained by the Optical, Spectroscopic, and Infrared Remote Imaging System (OSIRIS) cameras onboard the Rosetta spacecraft reveal that asteroid 21 Lutetia has a complex geology and one of the highest asteroid densities measured so far, 3.4 ± 0.3 grams per cubic centimeter. The north pole region is covered by a thick layer of regolith, which is seen to flow in major landslides associated with albedo variation. Its geologically complex surface, ancient surface age, and high density suggest that Lutetia is most likely a primordial planetesimal. This contrasts with smaller asteroids visited by previous spacecraft, which are probably shattered bodies, fragments of larger parents, or reaccumulated rubble piles.
Centre of Studies and Activities for Space-G. Colombo, University of Padova, via Venezia 15, 35131 Padova, Italy. elisa.segato@unipd.it
In this paper, the results of the thermo-elastic analysis performed on the stereo channel of the imaging system Integrated Observatory System for the BepiColombo European Space Agency mission to Mercury are presented. The aim of the work is to determine the effects of ambient parameter variations on the equipment performance; the optical performance is changing during the mission lifetime primarily because of the optics misalignments and deformations induced by temperature variations. The camera optics and their mountings are modeled and processed by a thermo-mechanical finite element model (FEM) program, which reproduces the expected optics and structure thermo-elastic deformations in the instrument foreseen operative temperature range, i.e., between -20 °C and 30 °C. The FEM outputs are elaborated using a MATLAB optimization routine: an algorithm based on nonlinear least square data fitting is adopted to determine the surface equation (plane, spherical, nth polynomial) which best fits the deformed optical surfaces. The obtained surfaces are then directly imported into a ZEMAX code for sequential ray-tracing analysis. Variations of the optical spot diagrams, modulation transfer function curves, and ensquared energy are then computed. The overall analysis shows that the preferred solution for mounting the optical elements is adopting the kinematic constraints instead of using the classical glue solution.
Science. 2010 Jan 8;327 (5962):190-3
20056887
H U Keller,
C Barbieri,
D Koschny,
P Lamy,
H Rickman,
R Rodrigo,
H Sierks,
M F A'Hearn,
F Angrilli,
M A Barucci,
J-L Bertaux,
G Cremonese,
V Da Deppo,
B Davidsson,
M De Cecco,
S Debei,
S Fornasier,
M Fulle,
O Groussin,
P J Gutierrez,
S F Hviid,
W-H Ip,
L Jorda,
J Knollenberg,
J R Kramm,
E Kührt,
M Küppers,
L-M Lara,
M Lazzarin,
J Lopez Moreno,
F Marzari,
H Michalik,
G Naletto,
L Sabau,
N Thomas,
K-P Wenzel,
I Bertini,
S Besse,
F Ferri,
M Kaasalainen,
S Lowry,
S Marchi,
S Mottola,
W Sabolo,
S E Schröder,
S Spjuth,
P Vernazza
Max Planck Institute for Solar System Research, Katlenburg-Lindau, Germany. keller@linmpi.mpg.de
The European Space Agency's Rosetta mission encountered the main-belt asteroid (2867) Steins while on its way to rendezvous with comet 67P/Churyumov-Gerasimenko. Images taken with the OSIRIS (optical, spectroscopic, and infrared remote()imaging system) cameras on board Rosetta show that Steins is an oblate body with an effective spherical diameter of 5.3 kilometers. Its surface does not show color variations. The morphology of Steins is dominated by linear faults and a large 2.1-kilometer-diameter crater near its south pole. Crater counts reveal a distinct lack of small craters. Steins is not solid rock but a rubble pile and has a conical appearance that is probably the result of reshaping due to Yarkovsky-O'Keefe-Radzievskii-Paddack (YORP) spin-up. The OSIRIS images constitute direct evidence for the YORP effect on a main-belt asteroid.
G Galletta,
F Ferri,
G Fanti,
M D'Alessandro,
G Bertoloni,
D Pavarin,
C Bettanini,
P Cozza,
P Pretto,
G Bianchini,
S Debei
Department of Astronomy, University of Padova, Padua, Italy.
The Martian Environment Simulator (SAM "Simulatore di Ambiente Marziano") is a interdisciplinary project of Astrobiology done at University of Padua. The research is aimed to the study of the survival of the microorganisms exposed to the "extreme" planetary environment. The facility has been designed in order to simulate Mars' environmental conditions in terms of atmospheric pressure, temperature cycles and UV radiation dose. The bacterial cells, contained into dedicated capsules, will be exposed to thermal cycles simulating diurnal and seasonal Martian cycles. The metabolism of the different biological samples will be analysed at different phases of the experiment, to study their survival and eventual activity of protein synthesis (mortality, mutations and capability of DNA reparing). We describe the experimental facility and provide the perspectives of the biological experiments we will perform in order to provide hints on the possibility of life on Mars either autochthonous or imported from Earth.
Nature. 2005 Nov 30;:
16319827
Cit:18
M Fulchignoni,
F Ferri,
F Angrilli,
A J Ball,
A Bar-Nun,
M A Barucci,
C Bettanini,
G Bianchini,
W Borucki,
G Colombatti,
M Coradini,
A Coustenis,
S Debei,
P Falkner,
G Fanti,
E Flamini,
V Gaborit,
R Grard,
M Hamelin,
A M Harri,
B Hathi,
I Jernej,
M R Leese,
A Lehto,
P F Lion Stoppato,
J J López-Moreno,
T Mäkinen,
J A M McDonnell,
C P McKay,
G Molina-Cuberos,
F M Neubauer,
V Pirronello,
R Rodrigo,
B Saggin,
K Schwingenschuh,
A Seiff,
F Simões,
H Svedhem,
T Tokano,
M C Towner,
R Trautner,
P Withers,
J C Zarnecki
[1] LESIA, Observatoire de Paris, 5 Place Janssen, 92195 Meudon, France [2] Université Denis Diderot – Paris 7, UFR de Physique, 2 Place Jussieu, 75006 Paris, France.
On the basis of previous ground-based and fly-by information, we knew that Titan's atmosphere was mainly nitrogen, with some methane, but its temperature and pressure profiles were poorly constrained because of uncertainties in the detailed composition. The extent of atmospheric electricity ('lightning') was also hitherto unknown. Here we report the temperature and density profiles, as determined by the Huygens Atmospheric Structure Instrument (HASI), from an altitude of 1,400 km down to the surface. In the upper part of the atmosphere, the temperature and density were both higher than expected. There is a lower ionospheric layer between 140 km and 40 km, with electrical conductivity peaking near 60 km. We may also have seen the signature of lightning. At the surface, the temperature was 93.65 +/- 0.25 K, and the pressure was 1,467 +/- 1 hPa.
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