HR: 0800h
AN: A31A-0008 [Abstracts]
TI: Time scale and feedback of zonal mean flow variability
AU: * Son, S
EM: sws2112@columbia.edu
AF: Department of Applied Physics and Applied Math, Columbia University, 200 SW Mudd,
Columbia University, New York, NY 10027, United States
AU: Lee, S
EM: sl@meteo.psu.edu
AF: Department of Meteorology, The Pennsylvania State University, 501 Walker, The
Pennsylvania State University, State College, PA 16802, United States
AU: Feldstein, S
EM: sbf@essc.psu.edu
AF: Earth and Environmental Systems Institute, The Pennsylvania State University, Earth-
Engineering Science Building, The Pennsylvania State University, State College, PA 16802, United States
AU: Ten Hoeve, J
EM: tenhoeve@stanford.edu
AF: Department of Civil and Environmental Engineering, Stanford University, Terman
Engineering Center M13, Stanford University, Stanford, CA 94305, United States
AB:
The physical processes which determine the time scale of zonal mean flow variability are examined with an
idealized numerical model that has zonally symmetric lower boundary (Son and Lee, 2005). In the part of the
parameter space where the time-mean zonal flow is characterized by a single (double) jet, the dominant form of
zonal mean flow variability is the zonal index (poleward propagation), and the time-mean potential vorticity
gradient is found to be strong and sharp (weak and broad). The e-folding time scale of the zonal index is found to
be close to 55 days, much longer than the observed 10-day time scale. The e-folding time scale of the poleward
propagation is about 40 days. The long e-folding time scales for the zonal index are found to be consistent with
an unrealistically strong and persistent eddy-zonal mean flow feedback. A calculation of the refractive index
indicates that the background flow supports eddies that are trapped within midlatitudes, undergoing relatively little
meridional propagation.
Additional model runs are performed with an idealized mountain to investigate whether zonal asymmetry can
disrupt the eddy feedback. For single jet states, the time scale is reduced to about 30 days if the mountain height
is 4 km or less. The reduction in the time scale occurs because the stationary eddies excited by the mountain
alter the background flow in a manner which leads to the replacement of zonal index events by shorter time-scale
poleward propagation. With a 5-km mountain, the time scale reverts and increases to 105 days. This threshold
behavior is again attributed to a sharpening of the background zonal jet which arises from an extremely strong
stationary wave momentum flux convergence. In contrast, for double jet states, the time scale changes only
slightly and the poleward propagation is maintained in all mountain runs.
DE: 1620 Climate dynamics (0429, 3309)
SC: Atmospheric Sciences [A]
MN: 2007 Fall Meeting