Showing posts with label Ocean circulation. Show all posts

NOAA: Arctic Report Card -- Update for 2009

Dear Readers,

The post below is number 1,500 since this blog started in 2007.  Never in my wildest dreams could I have imagined that I would have posted so many articles here.  Nor could I have imagined that this blog would receive an average of nearly 500 visitors per day, with upwards of 800 pages per day viewed, now bringing total page views to nearly 200,000.

Over time, as the scientific articles have accumulated here, this blog has become a database for the advanced layperson seeking more knowledge of climate science.

I admit that I cannot nor do I try to cover all of the vast number of aspects of the science of climate change.  The blog's focus has been on the Arctic and on changing patterns of atmospheric and oceanic circulation all around the globe, although many other subjects are covered.

It is to be hoped that the blog's contents have been found useful by you, the reader.

I salute all of you for seeking the truth.

Sincerely,

Tenney Naumer

NOAA: Arctic Report Card -- Update for 2009


Warming of the Arctic continues to be widespread, and in some cases, dramatic.

Linkages between air, land, sea, and biology are evident.  


Link to first webpage here:  http://www.arctic.noaa.gov/reportcard/

Please click on the headings below to go to the various sections of the report.

Atmosphere
Large scale wind patterns impacted by loss of summer sea ice

There is evidence that, by creating a new major surface heat source, the recent extreme loss of summer sea ice extent is having a direct feedback effect on the general atmospheric circulation into the winter season (Francis et al., 2009). Fall air temperature anomalies of greater than +1.0 °C were observed well up into the atmosphere (Figure 3A), when averaged over 2003–2008 relative to a 1968–1996 base period. The higher temperatures in the lower troposphere decrease the atmospheric air density and raise the height of upper-air-constant-pressure levels over the Arctic Ocean (Figure 3B). These increased heights north of 75° N weaken the normal north-to-south pressure gradient that drives the normal west-to-east airflow in the upper troposphere. In this sense, the effect of higher air temperatures in the lower Arctic atmosphere is contributing to changes in the atmospheric circulation in both the Arctic and northern mid-latitudes. For example, Honda et al. (2009) suggest a remote connection between loss of Arctic sea ice and colder temperatures over eastern Asia.

The climate of the Arctic is influenced by repeating patterns of sea level pressure that can either dominate during individual months or represent the overall atmospheric circulation flow for an entire season. The main climate pattern for the Arctic is known as the Arctic Oscillation (AO) with anomalous winds that blow counter-clockwise around the pole when the pattern is in its positive phase. A second wind pattern has been more prevalent in the 21st century and is known as the Arctic Dipole (AD) pattern (Wu et al., 2006; Overland et al., 2008). The AD pattern has anomalous high pressure on the North American side of the Arctic and low SLP on the Eurasian side. This implies winds blowing more from south to north, compared to the AO, and increasing transport of heat into the central Arctic Ocean. The AD pattern occurred in all summer months of 2007 and helped support the major 2007 summer reduction in sea ice extent (Overland et al., 2008). Fall 2008 and winter/spring 2009 showed a return of the AO pattern, but also considerable month to month variability in the presence of these various climate patterns.

Sea Ice
Multi-year sea ice is being replaced by first year sea ice

Ocean
Upper ocean remains warm and less salty

Land
Increased runoff in Siberia, less snow in North America

Greenland
Ice sheet loss continues

Biology
High Arctic species impacted by loss of sea ice

Link to complete report (pdf file):  http://www.arctic.noaa.gov/reportcard/ArcticReportCard_full_report.pdf

NASA's JPL: Launch of Aquarius/SAC-D designed to provide monthly global maps of how salt concentration varies on the ocean surface – a key indicator of ocean circulation and its role in climate change, May 2010

Dear Readers,

This might sound to you like the most boring topic known to man, but in fact the measurement of salt concentrations in the ocean indicates its interactions with the atmosphere. They need good measurements to improve their ocean-atmosphere coupled models. For example, at times there is a difference between the salt concentrations in the western Atlantic (around Central America)and the eastern Pacific great enough to very significantly affect weather patterns and where lots of rain falls and where it doesn't. (How's that for layman's language!)

JPL/NASA News


Alan Buis 818-354-0474
Jet Propulsion Laboratory, Pasadena, Calif.
Alan.buis@jpl.nasa.gov

Sandra Torrusio 011-54-11-4331-0074, ext. 288
Comisión Nacional de Actividades Espaciales, Buenos Aires, Argentina
storrusio@conae.gov.ar

News release: 2009-149                                                                      Oct. 1, 2009

International Science Teams Selected for Aquarius/SAC-D Mission

PASADENA, Calif. – NASA and Argentina's Comisión Nacional de Actividades Espaciales (CONAE), with support from the Argentine Ministry of Science, Technology and Innovative Production (MinCyT), have selected additional members of the international scientific investigating team for the Aquarius/Satélite de Aplicaciones Científicas (SAC)-D mission, scheduled to launch in 2010. The new team members include two from NASA's Jet Propulsion Laboratory, Pasadena, Calif.

The joint minimum three-year mission will carry a suite of instruments into space onboard the Argentine-built SAC-D spacecraft. NASA's sensor, Aquarius, is the primary instrument on the mission. Aquarius is designed to provide monthly global maps of how salt concentration varies on the ocean surface – a key indicator of ocean circulation and its role in climate change. Seven CONAE-sponsored instruments will provide environmental data for a wide range of applications, including natural hazards, land processes, epidemiological studies and air quality issues.

NASA and CONAE conducted a joint solicitation and selection of scientific investigations and innovative application demonstration projects using Aquarius/SAC-D observations. NASA selected 15 projects that it will fund over the next four years for a total of $8 million. CONAE/MinCyT selected 15 Argentine projects with participation of scientists from Chile and Brazil, which will be funded for a total of $1.3 million. An additional 10 proposals were selected from scientists in Italy and Japan.

The primary focus of the selected projects is to prepare the scientific community to use Aquarius/SAC-D observations to better understand the interactions between global ocean circulation, the water cycle and Earth's climate. Several projects will concentrate on socio-economic applications of the mission's observations in such areas as fishery management, disease and flood forecasting, and monitoring volcanic eruptions and fires.

The principal investigators for the NASA-funded projects are:

- William Asher, University of Washington, Seattle
- Frederick Bingham, University of North Carolina, Wilmington
- Shannon Brown, NASA's Jet Propulsion Laboratory, Pasadena, Calif.
- Antonio Busalacchi, University of Maryland, College Park
- Ichiro Fukumori, Jet Propulsion Laboratory, Pasadena, Calif.
- Arnold Gordon, Lamont-Doherty Earth Observatory, Columbia University, Palisades, N.Y.
- Thomas Jackson, U. S. Department of Agriculture, Beltsville, Md.
- W. Linwood Jones, University of Central Florida, Orlando
- Roger Lang, George Washington University, Washington, D.C.
- William Large, National Center for Atmospheric Research, Boulder, Colo.
- Nikolai Maximenko, University of Hawaii, Honolulu
- Rui Ponte, Atmospheric and Environmental Research, Inc., Cambridge, Mass.
- Stephen Riser, University of Washington, Seattle
- Douglas Vandemark, University of New Hampshire, Durham
- Frank Wentz, Remote Sensing Systems, Santa Rosa, Calif.

The principal investigators for the CONAE/MinCyT-funded projects are:

- Miguel Bertolami, National University of the Patagonia San Juan Bosco, Chubut, Argentina
- Marcelo Cassini, National University of Luján, Buenos Aires, Argentina
- Carlos Cotlier, National University of Rosario, Santa Fe, Argentina
- Dora Goniadzki, National Water Institute, Buenos Aires, Argentina
- Raúl Guerrero, National Institute for Fisheries Research and Development, Buenos Aires, Argentina
- Haydee Karszenbaum, University of Buenos Aires, Buenos Aires, Argentina
- Maite Narvarte, Marine Biology Institute Alte. Storni, Chubut, Argentina
- Alberto Piola, Naval Hydrographic Service, Buenos Aires, Argentina
- Gloria Pujol, National Meteorological Service, Buenos Aires, Argentina
- Mirta Raed, National University of Luján, Buenos Aires, Argentina
- Raúl Rivas, National University of Centro, Buenos Aires, Argentina
- Cristina Rodriguez, Mariscope Chilena Department of Oceanography, Puerto Montt, Chile
- Hector Salgado, Naval Hydrographic Service, Buenos Aires, Argentina
- Paola Salio, National University of Buenos Aires, Buenos Aires, Argentina
- Cristina Serafini, National University of Luján, Buenos Aires, Argentina

NASA is providing the Aquarius instrument (which was built by JPL), along with launch services and Aquarius science data processing. JPL manages the Aquarius mission for NASA. NASA's Goddard Space Flight Center, Greenbelt, Md., is providing the Aquarius instrument radiometer. CONAE is providing the SAC-D spacecraft; additional instruments, including optical and thermal cameras, a microwave radiometer and other specific sensors (with participation from Italy, France, Canada and various Argentine institutions); and mission operations.

Launch of Aquarius/SAC-D onboard a Delta II rocket is scheduled for no earlier than May 2010 from Vandenberg Air Force Base in California.

For more information on the Aquarius/SAC-D mission, visit: http://aquarius.nasa.gov and http://www.conae.gov.ar/satelites/sac-d.html . JPL is managed for NASA by the California Institute of Technology in Pasadena.