The material is based upon work supported by NASA under award number 80GSFC21M0002. S.L.L. and C.A.N. received funding for this work from the NASA solar system Observations (SSO) Program and the NASA Astrobiology Institute. The development of the eSMA was facilitated by grant 614.061.416 from the Netherlands Organization for Scientific Research, NWO, and NSF grant AST0540882 to the Caltech Submillimeter Observatory, along with the dedicated work of observatory staff from the JCMT, CSO, and the SMA. The Submillimeter Array is a joint project between the Smithsonian Astrophysical Observatory and the Academia Sinica Institute of Astronomy and Astrophysics and is funded by the Smithsonian Institution and the Academia Sinica. We recognize that Maunakea is a culturally important site for the indigenous Hawaiian people; we are privileged to study the cosmos from its summit. Thank you to Erin Flowers for insight into TitanWRF. Thank you to Martin Cordiner for help with the code to plot the acetonitrile emissions and fruitful discussions about previous work related to Titan's zonal winds.
Measurements of Titan's Stratospheric Winds during the 2009 Equinox with the eSMA
Abstract
Saturn's moon Titan possesses stratospheric zonal winds that places it among a sparse class of planetary bodies known to have superrotation in their atmospheres. Few measurements have been made of these speeds in the upper stratosphere, leaving their seasonal variations still not well understood. We examined observations made with the extended Submillimeter Array in 2009 March (Ls = 355°) and 2010 February (Ls = 5°), shortly before and after Titan's northern spring equinox. Cassini observations and atmospheric models find equinoctial periods to be especially dynamic. Zonal wind calculations, derived from the Doppler frequency shift of CH3CN near 349.4 GHz, yielded speeds of 128 ± 27 m s−1 in 2009 and 209 ± 48 m s−1 in 2010. We estimated the measured emission to originate from vertical altitudes of 336₋₈₈⁺¹¹² km, equivalent to pressures of 3.8_(−3.4)^(+19.2) Pa, commensurate with Titan's upper stratosphere/lower mesosphere. This suggests a possible increase in zonal speeds during this period. The results are then compared to those from previous Cassini-inferred and direct-interferometric observations of winds, as well as general circulation model simulations, to form a more complete picture of the seasonal cycle of stratospheric zonal winds.
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© 2024. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
Acknowledgement
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Additional details
Funding
- National Aeronautics and Space Administration
- 80GSFC21M0002
- Dutch Research Council
- 614.061.416
- National Science Foundation
- AST-0540882
- Smithsonian Institution
- Academia Sinica