HR: 0800h
AN: OS31A-0558 [Abstracts]
TI: The warming of the California Current System: Dynamics and ecosystem implications
AU: * Di Lorenzo, E
EM: edl@eas.gatech.edu
AF: School of Earth and Atmospheric Sciences
Georgia Institute of Technology, 311 Ferst Drive, Atlanta, GA 30332-0340
United States
AU: Miller, A J
EM: ajmiller@ucsd.edu
AF: Scripps Institution of Oceanography, 9500 Gilman Drive, La Jolla, CA 92093
AU: Schneider, N
EM: nschneid@hawaii.edu
AF: International Pacific Research Center, University of Hawaii at Manoa
1680 East West Road, Honolulu, HI 96822
United States
AU: McWilliams, J C
EM: jcm@atmos.ucla.edu
AF: Dept. of Atmospheric Sciences
University of California Los Angeles, 405 Hilgard Ave, Los Angeles, CA 90095
AB:
Long-term changes in the observed temperature and salinity along the Southern California coast are studied using a
four-dimensional space-time analysis of the 52-year (1949-2000) California Cooperative Oceanic Fisheries Investigations
(CalCOFI) hydrography combined with a sensitivity analysis of an eddy permitting primitive equation ocean model under various
forcing scenarios. An overall warming trend of 1.3 C in the ocean surface, a deepening in the depth of the mean thermocline
(18 m) and increased stratification between 1950 and 1999 are found to be primarily forced by large-scale decadal
fluctuations in surface heat fluxes combined with horizontal advection by the mean currents. After 1998 the surface heat
fluxes suggest the beginning of a period of cooling, consistent with colder observed ocean temperatures. Salinity changes are
decoupled from temperature and appear to be controlled locally in the coastal ocean by horizontal advection by anomalous
currents.
A cooling trend of -0.5C in SST is driven in the ocean model by the 50 year NCEP wind reanalysis, which contains a positive
trend in upwelling favorable winds along the Southern California Coast. A net warming trend of +1C in SST occurs, however,
when the effects of observed surface heat fluxes are included as forcing functions in the model. Within 50 to 100 km of the
coast, the ocean model simulations show that increased stratification/deepening of the thermocline associated with the
warming reduces the efficiency of coastal upwelling in advecting subsurface waters to the ocean surface, counteracting any
effects of the increased strength of the upwelling winds. Such a reduction in upwelling efficiency leads in the model to a
freshening of surface coastal waters. Because salinity and nutrients at the coast have similar distributions this must
reflect a reduction of the nutrient supply at the coast, which is manifestly important in explaining the observed decline in
zooplankton concentration.
The increased winds also drive an intensification of the mean currents of the Southern California Current System (SCCS).
Model mesoscale eddy variance significantly increases in recent decades in response to both the stronger upwelling winds and
the warmer upper ocean temperatures, suggesting that the stability properties of the SCCS have also changed.
DE: 4500 OCEANOGRAPHY: PHYSICAL
SC: Ocean Sciences [OS]
MN: 2004 AGU Fall Meeting