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February 2, 20260 citations

Observations of the temporal evolution of Saturn's stratosphere following the Great Storm of 2010-2011. II. Latitudinal distribution of CO and stratospheric winds

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TCT. CavaliéRMR. MorenoCLC. Lefour

Key Points

  • The research aims to evaluate changes in CO levels and stratospheric winds after Saturn's Great Storm of 2010-2011.
  • Conducted interferometric observations using SMA and ALMA in the submillimeter range.
  • Analyzed CO emissions (J=3-2 and J=2-1) to determine the meridional distribution of CO.
  • Measured wind variations from Doppler shifts of spectral lines.
  • Found a relatively constant meridional distribution of CO with an average mole fraction of (1.7±0.7) at 0.3 mbar.
  • CO abundance remained largely unchanged in the presence of the stratospheric beacon.
  • Identified significant differences in winds, noting a slower equatorial prograde jet and new prograde jets in the southern hemisphere.

Abstract

Saturn's Great Storm of 2010-2011 has produced two stratospheric hot spots, the ``beacons, '' that eventually merged to produce a gigantic one in April and May 2011. This beacon perturbed stratospheric temperatures, hydrocarbon, and water abundances for several years. We aim to assess whether the beacon induced any perturbation in another oxygen species, namely CO. A second goal is to measure how the vortex perturbed the stratospheric wind regime. We conducted interferometric observations of Saturn in the submillimeter range with SMA and ALMA to spatially resolve the CO (J=3-2) and (J=2-1) emissions, respectively. We used a previously determined CO vertical profile as a template, to search for (i) the meridional distribution of CO and (ii) variations of the CO abundance associated with the storm. The high spatial and spectral resolutions of the ALMA observations enabled us to retrieve the winds from the Doppler shifts induced by the winds on the lines. Despite limitations resulting from the removal of baseline ripples, we find a relatively constant meridional distribution of CO. The average CO mole fraction implied by the adopted and rescaled 220-year-old-comet-impact vertical profile is (1. 7±0. 7) at 0. 3, mbar, i. e. , where the contribution functions peak. We also find that the CO abundance has not been noticeably altered in the beacon. The winds measured at 1, mbar show striking differences with those measured in 2018, after the demise of the beacon. We find the signature of the vortex as an anticyclonic feature. The equatorial prograde jet is 100 to 200 -7 -1 slower, and broader in latitude, than in quiescent conditions. We also detect several prograde jets in the southern hemisphere. Finally, we detect a retrograde jet at 74^̧ircN which could be a polar jet caused by the interaction of the Saturn magnetosphere with its atmosphere. With Saturn's equinox season approaching, new wind measurements would enable the findings presented in this paper to be confirmed by probing the two hemispheres equally and searching for a southern retrograde polar jet.

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Cite This Study

Cavalié et al. (2026) studied this question.

synapsesocial.com/papers/6980ffc6c1c9540dea812867https://doi.org/10.1051/0004-6361/202557032/pdf
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