Super-adiabatic temperature gradient at Jupiter's equatorial zone and implications for the water abundance

The temperature structure of a giant planet was traditionally thought to be an adiabat assuming convective mixing homogenizes entropy. The only in-situ measurement made by the Galileo Probe detected a near-adiabatic temperature structure within one of Jupiter's 5μm hot spots with small but defi...

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Veröffentlicht in:Icarus (New York, N.Y. 1962) N.Y. 1962), 2024-05, Vol.414, p.116028, Article 116028
Hauptverfasser: Li, Cheng, Allison, Michael, Atreya, Sushil, Brueshaber, Shawn, Fletcher, Leigh N., Guillot, Tristan, Li, Liming, Lunine, Jonathan, Miguel, Yamila, Orton, Glenn, Steffes, Paul, Waite, J. Hunter, Wong, Michael H., Levin, Steven, Bolton, Scott
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Sprache:eng
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Zusammenfassung:The temperature structure of a giant planet was traditionally thought to be an adiabat assuming convective mixing homogenizes entropy. The only in-situ measurement made by the Galileo Probe detected a near-adiabatic temperature structure within one of Jupiter's 5μm hot spots with small but definite local departures from adiabaticity. We analyze Juno's microwave observations near Jupiter's equator (0– 5 oN) and find that the equatorial temperature structure is best characterized by a stable super-adiabatic temperature profile rather than an adiabatic one. Water is the only substance with sufficient abundance to alter the atmosphere's mean molecular weight and prevent dynamic instability if a super-adiabatic temperature gradient exists. Thus, from the super-adiabaticity, our results indicate a water concentration (or the oxygen to hydrogen ratio) of about 4.9 times solar with a possible range of 1.5– 8.3 times solar in Jupiter's equatorial region. •The Juno/MWR finds a super-adiabatic temperature gradient across the water condensation layer at Jupiter's equatorial zone.•The deep atmosphere has a higher potential temperature than the shallow atmosphere at the equatorial zone.•The deep O/H ratio on Jupiter is between 1.4 - 8.3 times solar with the optimal estimate at about 4.9 solar.
ISSN:0019-1035
1090-2643
DOI:10.1016/j.icarus.2024.116028