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Showing posts with label Interdecadal Pacific Oscillation - IPO. Show all posts
Showing posts with label Interdecadal Pacific Oscillation - IPO. Show all posts

Saturday, March 8, 2014

Dr. Richard Rood talks on the changes outside natural variability wrt ENSO, and other cyclical oscillations

by Peter Sinclair, Climate Crocks, March 8, 2014




Dr. Richard  Rood is a veteran NASA Atmospheric Scientist, currently teaching at the University of Michigan’s College of Atmospheric, Oceanic, and Space Sciences.

Dr. Rood also posts regularly on Dr. Jeff Master’s Weather Underground.

I sat down with Dr. Rood not long ago to talk about developments in climate science. This is a small, but significant piece of the conversation, in light of this week’s announcement of a heightened alert for a developing El Nino event in the Pacific.

Saturday, October 15, 2011

Rob Painting, Skeptical Science: Ocean Heat Poised To Come Back And Haunt Us?

Ocean Heat Poised To Come Back And Haunt Us?

by Rob Painting, Skeptical Science, October 15, 2011

Comments about a recent post on Meehl et al. (2011), a climate model-based study, indicated that a number of issues had not been made very clear. For instance, what was meant by natural variability, and what were the mechanisms in the climate model which allowed heat to be distributed to the deep ocean? Hopefully, I can clarify a few things with this additional post. 


The natural variability referred to in the climate model is simply the exchange of heat in the surface and subsurface layers of the ocean, as is apparent in real world observations of La Niña and El Niño. La Niña-like patterns cause cooler-than-average surface temperatures because large areas of cool subsurface oceanic waters are brought to the surface.


And no, this isn't some new, as-yet-unexplained phenomena. The climate model suggests that La Niña and the (La Niña-like) negative phase of the Interdecadal Pacific Oscillation, well-observed ocean patterns, are when large amounts of heat are pumped down into the deep ocean.

Natural variability in a warming world


In a stable climate (i.e., no human-caused global warming, or some other natural climate forcing) the "peaks and valleys" of natural variability in global surface temperatures would average out to zero over the long-term. To get this point across, I've shown this in the graphic below in a very simplified manner -- real-world natural variability, quite obviously, would be much more irregular.  



Figure 1. Diagram illustrating "natural variability" with a long-term average of zero.


The ocean heat content of the real world, however, is steadily increasing, and this affects global surface temperatures. Therefore if we take that natural oscillation, with a long-term average of zero, and now plot it on a warming trend: 



Figure 2. Diagram illustrating "natural variability" with a long-term warming trend.


We now see that the "valleys" become shallower because they are superimposed on a climbing (warming) trend -- these can be thought of as the hiatus decades. But note what happens to the peaks -- they become steeper and higher, with each successive cycle climbing higher than the last.


The work of Meehl et al. (2011) suggests that natural variability persists under conditions of global warming similar to the present, and that we may currently be in one of these decade-long hiatus periods. If so, we likely face a steep climb in global surface temperatures to the next peak of the natural cycle.

The ocean and global surface temperatures


Being in contact with the atmosphere, and covering about 70% of the Earth's surface, the ocean surface layer is the main source of atmospheric heating. The ocean absorbs sunlight and warms during the day, but as it is warmer than the air above it, the oceans release this heat to the cooler atmosphere above. Because of this, the temperature of the ocean surface layers, and the ocean-atmosphere heat exchange, exert a strong influence on global surface temperatures.

La Niña-like, El Niño-like, like what?


These phrases simply describe the characteristic state of the climate over the period observed. During La Niña there is strong upwelling of deeper cooler water in the tropical Eastern Pacific. When enough of this cooler water reaches the surface it causes cooling of global surface temperatures, due to the ocean surface-atmosphere heat exchange and the increased rainfall over land it produces.


The opposing phase in this natural cycle, is El Niño. During El Niño, the upwelling of cooler deep water in the tropical Eastern Pacific shuts off, heat in the surface layers (top 100 metres of ocean) builds up, and the ocean loses heat to the atmosphere. This, and subsequent reduced rainfall over land, results in the rise in global surface temperatures we typically associate with El Niño (see Trenberth, 2002). (There is a great animation of ENSO (La Niña/El Niño) here.)
  

Therefore, if the dominant pattern over a decade is La Niña-like, then we would expect global surface temperatures to stagnate -- the hiatus decades in the model. This is seen in the Pacific Ocean heat content trends from the climate model used by Meehl et al. (2011) below:   



Figure 3. Composite decadal trends of zonal-mean temperature trends for hiatus periods for the Pacific Ocean. From Meehl et al. (2011).


The vertical profile shows heat (the warm-coloured areas in Figure 3) accumulating in the subsurface ocean during the hiatus periods. At the same time the ocean surface, particularly the top 100 metres, shows a cooling trend. It's this La Niña-like cooling trend in the surface layers that stalls global surface temperatures, even though the layers underneath are gaining heat. 

Funneling heat into the deep ocean 


The oceans warm during La Niña-like hiatus periods, but how does heat get into the deep ocean, when much of the surface ocean is cooler-than-normal? Figure 4 (from Meehl et al., 2011) shows the areas of ocean where heat begins to pile up.



Figure 4. Composite average global surface temperature trends for hiatus decades; stipling indicates 5% statistical significance (i.e., a 5% probability the result was due to chance or statistical error). Orange-coloured ocean areas represent regions where OHC is converging and being driven down into the deep.


In the warm-coloured oceanic regions, heat is converging in the surface layers and is being forced down to the deep ocean. An example of this strong downwelling of heat in the model is shown for the upper Pacific Ocean in Figure 5 below.



Figure 5. Composite decadal trends of meridional overturning stream function (i.e., ocean volume transport) for the upper Pacific Ocean for hiatus periods. Arrows added for clarity. Sv= sverdrup (from Meehl et al., 2011).


Again, this is very reminiscent of the upwelling of cool water in the Eastern Pacific, and the pooling of warm water in the Northern Pacific that is observed during La Niña.


No doubt many readers will identify these hiatus periods, as depicted in Figure 4, as similar not only to La Niña but to the pattern that arises during the negative phase of the Interdecadal Pacific Oscillation. In other words, the climate model is simulating well-observed phenomena, although we currently lack the instruments and data to verify all the details. 

One more time


So to recap:

  • Meehl e al. (2011) is a climate model-based study showing that hiatus decades, of little or no increase in global surface temperatures, are relatively common, even under conditions of global warming similar to the present.
  • This see-sawing pattern of global surface temperatures has been apparent in climate model projections for some time now. 
  • These hiatus decades are simply the cool phase of a cool-warm natural cycle where heat is exchanged between the surface and subsurface ocean. 
  • The deep ocean warms during these hiatus decades because heat builds up in mid-latitude regions and is quickly funneled downwards.
  • Heat buried in the deep ocean remains there for hundreds to thousands of years. It is not involved in the heat exchange occurring in shallower layers. 
  • Oceanic patterns in the hiatus decades are very similar to both La Niña and the Interdecadal Pacific Oscillation. So the model is simulating well-observed phenomena.
  • The ocean, as a whole, is still steadily building up heat, so the next warm phase of this natural cycle may drive global temperatures to new record highs (the ocean heat coming back to haunt us).  
http://www.skepticalscience.com/Ocean-Heat-Poised-To-Come-Back-And-Haunt-Us-.html

Sunday, June 14, 2009

Ingo Heinrich et al., Australia's climate: Drought and flooding in annual rings of tropical trees

Australia's climate: Drought and flooding in annual rings of tropical trees

ScienceDaily (June 12, 2009) — Annual rings are acclaimed in representing natural climate archives. For the temperate latitudes it is known that the growth of these annual rings depend mainly on temperature and precipitation. In the tropics, however, with only slight seasonal variations, the correlation is not so evident. Now scientists at the German Research Centre for Geosciences (GFZ) and their colleagues at the Australian National University have been able to prove that tree growth in north-east Australia depends mainly on the annual precipitation.

Furthermore, in the recent edition of the journal Climate Dynamics, they showed that growth rings are most suitable as climate proxy data for the registration of the precipitation dynamics in Australia.

Australia is periodically influenced by the El Niño-Southern Oscillation (ENSO) climate fluctuations and, thus, regularly afflicted by strong periods of drought with bush fires and flooding due to extremely strong rain fall. In order to more precisely investigate the, for the Australians so important, precipitation fluctuations of the past centuries, scientists working with Ingo Heinrich of the GFZ, a member institute of the Helmholtz-Association, examined tropical trees from the remote highland rain forests of Australia. The analysis led to one of the few existing annual ring chronologies from tropical rain forests worldwide. "Our time line actually represents the first ever growth ring chronology in tropical Australia," said Ingo Heinrich.

To date, the seasonal climate forecast for Australia has been based on calculations of the fluctuations of the indexes of ENSO or of the Interdecadal Pacific Oscillation (IPO), a method that, however, has not always proven to be reliable. "Through multiple correlation analyses we were now able to prove that the growth rings provide the better proxy data in comparison to ENSO or IPO with respect to precipitation dynamics," adds Ingo Heinrich.

In further steps at additional locations, and through a combination with coral proxy data, the scientists aim to accomplish considerable progress in the development of reliable climate forecasting from such growth rings.

Ingo Heinrich, Kathrin Weidner, Gerhard Helle, Heinz Vos, Janette Lindesay, & John C. G. Banks. 2009. Interdecadal modulation of the relationship between ENSO, IPO and precipitation: Insights from tree rings in Australia. Climate Dynamics, 33(1) 63; DOI: 10.1007/s00382-009-0544-5

Link to article: http://www.sciencedaily.com/releases/2009/06/090611110941.htm