HR: 0800h
AN: P51B-1429 [Abstracts]
TI: The Relationship Between Eddies and Zonal Flow on Jupiter: Results From the Cassini Flyby
AU: * Salyk, C
EM: csalyk@gps.caltech.edu
AF: California Institute of Technology, 1200 E California Blvd, Pasadena, CA 91125
United States
AU: Ewald, S
EM: spe@caltech.edu
AF: California Institute of Technology, 1200 E California Blvd, Pasadena, CA 91125
United States
AU: Ingersoll, A P
EM: api@gps.caltech.edu
AF: California Institute of Technology, 1200 E California Blvd, Pasadena, CA 91125
United States
AU: Lorre, J
EM: jjl@mipl7.jpl.nasa.gov
AF: Jet Propulsion Laboratory, 4800 Oak Grove Drive, Pasadena, CA 91109
United States
AU: Vasavada, A
EM: ashwin.r.vasavada@jpl.nasa.gov
AF: Jet Propulsion Laboratory, 4800 Oak Grove Drive, Pasadena, CA 91109
United States
AB:
Using images of Jupiter from the Voyager missions, Ingersoll et al. (JGR 86, p. 8733-8743, 1981) found that longitudinally
averaged eddy momentum flux, $\overline{u'v'}$, was positively correlated with the variation of zonal velocity with latitude,
$\frac{d\bar{u}}{dy}$, implying that Jupiter's eddies are supplying energy to the zonal wind flow. Using a conservative
estimate of the mass being transported in this process, they derive a power per unit area of between 1.5 and 3 $ W m^{-2}$.
The amount of energy transferred would thus be more than 10% of Jupiter's thermal radiation; in comparison, Earth's eddies
transfer an amount of energy that is about 0.1% of its emitted thermal energy. The analysis of Ingersoll et al., however,
was challenged by Sromovsky et al. (JAtS 39, p. 1433-1445, 1982) who demonstrated that sampling biases could skew the results
of such a study. Among their concerns were the possibility that a few, well-sampled areas of the planet were contributing
disproportionately to the observed correlation, that the longitudinally averaged $\overline{u'v'}$ was strongly affected by
values of $u'v'$ far from the median of the sample, and that the human eye, which was used for feature correlation, may have
introduced unknown biases. After more than 20 years, we revisit these issues. We report results of an analysis of eddy
momentum flux using images from the recent Cassini flyby of Jupiter analyzed with an automatic feature-tracker, which
provided the advantages of more even planetary coverage, a greater number of tracked features and the absence of human bias.
We find a similar correlation between $\overline{u'v'}$ and $\frac{d\overline{u}}{dy}$. We will present this result, our
estimate of the eddy energy transfer rate, a discussion of the statistics of our sample and results of a second look at
Voyager images.
DE: 5707 Atmospheres--structure and dynamics
DE: 6220 Jupiter
DE: 0343 Planetary atmospheres (5405, 5407, 5409, 5704, 5705, 5707)
SC: Planetary Sciences [P]
MN: 2004 AGU Fall Meeting