Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8133803 | Icarus | 2018 | 15 Pages |
Abstract
We report on results of an observing campaign to support the Juno mission. At the beginning of 2016, using TEXES (Texas Echelon cross-dispersed Echelle Spectrograph), mounted on the NASA Infrared Telescope Facility (IRTF), we obtained data cubes of Jupiter in the 1930-1943â¯cmâ1 spectral ranges (around 5â¯Âµm), which probe the atmosphere in the 1-4â¯bar region, with a spectral resolution of ââ¯0.15â¯cmâ1 and an angular resolution of ââ¯1.4”. This dataset is analysed by a code that combines a line-by-line radiative transfer model with a non-linear optimal estimation inversion method. The inversion retrieves the vertical abundance profiles of NH3 - which is the main contributor at these wavelengths - with a maximum sensitivity at ââ¯1-3â¯bar, as well as the cloud transmittance. This retrieval is performed on more than one thousand pixels of our data cubes, producing maps of the disk, where all the major belts are visible. We present our retrieved NH3 abundance maps which can be compared with the distribution observed by Juno's MWR (Bolton et al., 2017; Li et al., 2017) in the 2â¯bar region and discuss their significance for the understanding of Jupiter's atmospheric dynamics. We are able to show important latitudinal variations - such as in the North Equatorial Belt (NEB), where the NH3 abundance is observed to drop down to 60 ppmv at 2â¯bar - as well as longitudinal variability. In the zones, we find the NH3 abundance to increase with depth, from 100â¯Â±â¯15 ppmv at 1â¯bar to 500â¯Â±â¯30 ppmv at 3â¯bar. We also display the cloud transmittance-NH3 abundance relationship, and find different behaviour for the NEB, the other belts and the zones. Using a simple cloud model (Lacis and Hansen, 1974; Ackerman and Marley, 2001), we are able to fit this relationship, at least in the NEB, including either NH3-ice or NH4SH particles with sizes between 10 and 100â¯Âµm.
Related Topics
Physical Sciences and Engineering
Earth and Planetary Sciences
Space and Planetary Science
Authors
Doriann Blain, Thierry Fouchet, Thomas Greathouse, Thérèse Encrenaz, Benjamin Charnay, Bruno Bézard, Cheng Li, Emmanuel Lellouch, Glenn Orton, Leigh N. Fletcher, Pierre Drossart,