Engineering topics
Gulkis, S.
Publications and source records attributed to Gulkis, S..
Saturns Thermal Emission at 2.2-cm Wavelength as Imaged by the Cassini RADAR Radiometer
We present well-calibrated, high-resolution maps of Saturn's thermal emission at 2.2-cm wavelength obtained by the Cassini RADAR radiometer through the Prime and Equinox Cassini missions, a period covering approximately 6 years. The absolute brightness temperature calibration of 2% achieved is more than twice better than for all previous microwave observations reported for Saturn, and the spatial resolution and sensitivity achieved each represent nearly an order of magnitude improvement. The brightness temperature of Saturn in the microwave region depends on the distribution of ammonia, which our radiative transfer modeling shows is the only significant source of absorption in Saturn's atmosphere at 2.2-cm wavelength. At this wavelength the thermal emission comes from just below and within the ammonia cloud-forming region, and yields information about atmospheric circulations and ammonia cloud-forming processes. The maps are presented as residuals compared to a fully saturated model atmosphere in hydrostatic equilibrium. Bright regions in these maps are readily interpreted as due to depletion of ammonia vapor in, and, for very bright regions, below the ammonia saturation region. Features seen include the following: a narrow equatorial band near full saturation surrounded by bands out to about 10deg planetographic latitude that demonstrate highly variable ammonia depletion in longitude; narrow bands of depletion at -35deg latitude; occasional large oval features with depleted ammonia around -45deg latitude; and the 2010-2011 storm, with extensive saturated and depleted areas as it stretched halfway around the planet in the northern hemisphere. Comparison of the maps over time indicates a high degree of stability outside a few latitudes that contain active regions.
Regolith Properties of Asteroid 21 Lutetia Constrained by Combined Data Sets of the MIRO and VIRTIS Instruments During the Rosetta Spacecraft Flyby
During the July 10, 2010 flyby of Asteroid 21 Lutetia by the Rosetta spacecraft, maps of surface and subsurface temperatures were derived from the VIRTIS and MIRO instruments respectively. Both data sets indicated a porous surface layer with an extremely low, lunar-like thermal inertia. However, comparisons of the VIRTIS-measured and MIRO-modelled surface temperatures revealed offsets of 10- 30 K, indicative of self-heating or "beaming" effects that were not taken into account in the MIRO thermal modeling. Inclusion of a model of hemispherical craters at all scales 1 cm and larger, covering 50% of the surface, removes most of the offsets in the VIRTIS, MIRO surface temperature determinations.
The U.S. Rosetta Project at Its First Science Target: Asteroid (2867) Steins, 2008
On September 5, 2008, the International Rosetta Mission encountered its first formal science target of the mission, asteroid (2867) Steins. We report preliminary results from the U.S. experiments. NASA's contribution to the Rosetta mission consists of an ultraviolet (UV) spectrometer, a microwave spectrometer, a plasma instrument, and a portion of the electronics package for a mass spectrometer. The UV spectrometer (Alice) was used to obtain the first far-ultraviolet (FUV) spectrum of an asteroid. A ten-minute integration, surrounding the time of closest approach, averaging over a variety of geometries, showed very good signal from 850 Angstroms to 2000 Angstroms in the FUV. The microwave instrument (MIRO) obtained a high signal to noise measurement at both observing frequencies, enabling key thermal parameters to be derived. The plasma instrument (IES) obtained a brief measurement of the solar wind, and the Double Focusing Mass Spectrometer (DFMS) of the ROSINA instrument obtained a signal just at closest approach. Laboratory work with analogue materials was begun.
Cassini-Jupiter microwave observing campaign: DSN and GAVRT observations of Jovian synchrotron radio emission
This paper discusses the Cassini-Jupiter microwave observing campaign.
A polar orbiter to probe Jupiter's deep atmosphere, interior structure and polar magnetosphere
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Probing Jupiter's deep atmosphere and interior structure: a flyby mission proposal
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Jupiter's non-thermal radio emission: unveiling the jovian inner radiation belts through observations and modeling
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DSN and GAVRT observations of Jupiter at 13 GHz and the calibration of the Cassini radar instrument for passive radiometry
This paper reports the Cassini-JMOC observations supported by NASA's Deep Space Network (DSN) antennas at Goldstone, California.
DSN and GAVRT observations of Jupiter at 13 GHz and the calibration of the Cassini radar instrument for passive radiometry
One objective of the Cassini-Jupiter Microwave Observing Campaign observations was to measure Jupiter's average disk temperature with high accuracy at 13.78 GHz, which is the frequency of the radar receiver on the spacecraft. Preliminary results of the ground-based observations are reported. A second objective of the Cassini-JMOC project included an educational compment that allowed middle- and high school students to participate directly in the ground-based observations and data analysis.
Synchrotron measurements of Jupiter's inner radiation belts
In this paper we discuss recent observations on the study of synchrotron radio emission from Jupiter's inner radiation belts.
Synchrontron measurments of Jupiter's inner radiation belts
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Cassini, VLA, and DSN observations of synchrotron emission from Jupiter's radiation belts
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Pre-college students contribute to the Cassini-Jupiter millennium flyby
This paper reports supporting ground-based C-JMOC observations made with NASA's Deep Space Network antennas at Goldstone, California.
Radio reflection tomography: application to tomographic imaging of asteroids and comets
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Cassini-Jupiter microwave observing campaign: DSN and GAVRT observations of Jovian synchrotron radio emission
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Jupiter's synchrotron emission: unveiling the Jovian inner radiation belts through modeling and observation
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Cassini, VLA, and DSN observations of Jupiter's synchrotron emission
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