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Showing posts with label Ocean Surface Topography Mission/Jason-2. Show all posts
Showing posts with label Ocean Surface Topography Mission/Jason-2. Show all posts

Thursday, June 24, 2010

Adios El Niño, Hello La Niña?


The moderate El Niño of the past year has officially bowed out, leaving his cool sibling, La Niña, poised to potentially take the equatorial stage.

The latest image of Pacific Ocean sea surface heights from the NASA/European Ocean Surface Topography Mission/Jason-2 oceanography satellite, dated June 11, 2010, shows that the tropical Pacific has switched from warm (red) to cold (blue) during the last few months. The blue area in the center of the image depicts the recent appearance of cold water hugging the equator, which the satellite measures as a region of lower-than-normal sea level. Remnants of the El Niño warm water pool, shown here in red and yellow, still linger north and south of the equator in the center of the image.

The image shows sea surface height relative to normal ocean conditions. Red (warmer) areas are about 10 centimeters (4 inches) above normal. Green areas indicate near-normal conditions. Purple (cooler) areas are 14 to 18 centimeters (6 to 7 inches) below normal. Blue areas are 5 to 13 centimeters (2 to 5 inches) below normal.

"The central equatorial Pacific Ocean could stay colder than normal into summer and beyond, because sea level is already about 10 centimeters (4 inches) below normal, creating a significant deficit of the heat stored in the upper ocean," said JPL oceanographer and climatologist Bill Patzert. "The next few months will reveal if the current cooling trend will eventually evolve into a long-lasting La Niña situation."

A La Niña is essentially the opposite of an El Niño. During a La Niña, trade winds in the western equatorial Pacific are stronger than normal and the cold water that normally exists along the coast of South America extends to the central equatorial Pacific. La Niñas change global weather patterns and are associated with less moisture in the air, resulting in less rain along the coasts of North and South America. They also tend to increase the formation of tropical storms in the Atlantic.


Image credit: NASA/JPL Ocean Surface Topography Team

Tuesday, May 25, 2010

Birth of a Loop Current Eddy


The northern portion of the Gulf of Mexico's Loop Current, shown in red, appears about to detach a large ring of current, creating a separate eddy. An eddy is a large, warm, clockwise-spinning vortex of water -- the ocean's version of a cyclone. This image, created with measurements of sea surface height from multiple satellites, including the NASA/French Space Agency [Centre National d'Études Spatiales; CNES] Jason-1 and Ocean Surface Topography Mission/Jason-2 satellites, shows the speed and direction of surface currents in the Gulf. The star shows the former location of the Deepwater Horizon, the drilling rig that exploded and sank in April, and has been leaking oil since. A large eddy between the leak and the Loop Current might keep, at least temporarily, some of the spilling oil from reaching the Florida Straits, the ocean channel between the Florida Keys and Cuba, and being transported to the east coast of Florida and northward into the Gulf Stream.

This map was produced by the Colorado Center for Astrodynamics Research in Boulder, Colorado. The center processes satellite measurements of sea surface height in near real-time to create maps of the Gulf of Mexico, showing the location of medium-sized eddies and fronts. More information on these data products is available at http://argo.colorado.edu/~realtime/welcome/.

Photo credit: NASA/JPL/University of Colorado