English

Neptune's Latitudinal Variations as Viewed with ALMA

Earth and Planetary Astrophysics 2019-07-17 v1

Abstract

We present spatially resolved millimeter maps of Neptune between 95 and 242 GHz taken with the Atacama Large Millimeter/submillimeter Array (ALMA) in 201620172016-2017. The millimeter weighting functions peak between 1 and 10 bar on Neptune, lying in between the altitudes probed at visible/infrared and centimeter wavelengths. Thus, these observations provide important constraints on the atmospheric structure and dynamics of Neptune. We identify seven well-resolved latitudinal bands of discrete brightness temperature variations, on the order of 0.530.5-3K in all three observed ALMA spectral bands. We model Neptune's brightness temperature using the radiative transfer code Radio-BEAR and compare how various H2_2S, CH4_4, and \textit{ortho/para} H2_2 abundance profiles can fit the observed temperature variations across the disk. We find that observed variations in brightness temperature with latitude can be explained by variations in the H2_2S profile that range from sub- to super-saturations at altitudes above the 10-bar pressure level, while variations in CH4_4 improve the quality of fit near the equator. At the south polar cap, our best fit model has a depleted deep atmospheric abundance of H2_2S from 30 to only 1.5 times the protosolar value, while simultaneously depleting the CH4_4 abundance. This pattern of enhancement and depletion of condensable species is consistent with a global circulation structure where enriched air rises at the mid-latitudes (321232^{\circ}-12^{\circ}S) and north of the equator (2202^{\circ}-20^{\circ}N), and dry air descends at the poles (906690^{\circ}-66^{\circ}S) and just south of the equator (1212^{\circ}S2-2^{\circ}N). Our analysis finds more complex structure near the equator than accounted for in previous circulation models.

Keywords

Cite

@article{arxiv.1905.03384,
  title  = {Neptune's Latitudinal Variations as Viewed with ALMA},
  author = {Joshua Tollefson and Imke de Pater and Statia Luszcz-Cook and David DeBoer},
  journal= {arXiv preprint arXiv:1905.03384},
  year   = {2019}
}

Comments

21 pages, 17 Figures, accepted into the Astronomical Journal May, 2019

R2 v1 2026-06-23T09:01:03.418Z