Wednesday, 28 November 2012

The Low Carbon Future: Carbon Capture and Storage: a brief intro.



Here is the link to an introduction about carbon capture and storage from Chin-Mei. From next blog, I will talk about carbon sequestration.  

The Low Carbon Future: Carbon Capture and Storage: a brief intro.: Source: awards.earthjournalism.org From the International Energy Agency (IEA) to the Intergovernmental Panel on Climate Change (IPCC)...


Here are some brief explanations about carbon sequestration.

What is Carbon Sequestration?

      Carbon Sequestration is the capture and storage of anthropogenic carbon dioxide through geo-engineering projects. Carbon dioxide can be stored with existing geology such as depleted oil reservoirs.

How much Carbon dioxide can be stored?

        It is estimated that the potential maximum global storage of carbon dioxide may up to 900 G tons.

What are the storage options?

Depleted oil and gas reservoirs
Use of carbon dioxide in enhanced oil and gas recovery (EOGR)
Deep saline formations
Use of carbon dioxide in enhanced coal bed methane recovery

Conditions needed to store carbon dioxide?

      In most case, geological sequestration will take place at temperatures and pressures above the critical point (Critical temperature: 31 °C; Critical pressure: 73.8bar). For most geological settings, Carbon dioxide would be sequestered at densities of 600-800 kg/m3.

From the next blog I will talk about methods used for carbon sequestration.

 Reference:

  •      Brown, H. (2012) Carbon sequestration - out of sight, out of mind. 
  •      Burgess, W. (2012) Introduction to carbon geosequestration. 


Saturday, 24 November 2012

Ocean Iron Fertilisation. Does This Work?

Last post I talked about the impact of Ocean acidulation on marine animals and food net. How do we mitigate this?

Most potential methods used to mitigate ocean acidification are controversial. There is no known effective way to prevent the pH value of ocean continue decreasing as the carbon dioxide concentration of the atmosphere is increasing constantly.

On the one hand, long term scale of the value of ocean pH is mainly controlled by the input of eroded (or dissolved) rocks which give negative and positive ions. On the other hand, on short term scale, the ocean pH value if affected by the dissolved weak acid or alkali, for example, carbonate acid and borate. As I mentioned before, the increase of atmospheric carbonate acid accelerated the production of carbonate acid in the ocean.

Recently, there are several geo-engineer projects are proposed. One of them is “Iron fertilization”. It is the introduction of iron into the upper ocean in order to stimulate phytoplankton blooms. Schiermeier (2012) stated that “Each atom of added iron pulled at least 13,000 atoms of carbon out of the atmosphere by encouraging algal growth which, through photosynthesis, captures carbon.” Moreover, diatom contributes to about 40 per cent of all oceanic Carbon sequestration (Jones, 2012).

The most recent open ocean trial of ocean iron fertilization was conducted from January to March 2009 in the South Atlantic. Another one, in July 2012, iron fertilization was carried out in the ocean off western Canada by the Haida Salmon Restoration Corporation (Tollefson, 2012).

Ocean iron fertilisation seems to be an effective method to mitigate ocean acidification. However, some scientists suggested that massive ocean iron fertilization might cause toxic algal blooms or deplete oxygen levels in the middle of the water column.

 Reference:
  • Aumont, O.; Bopp, L. (2006) Globalizing results from the ­­­­­­ocean in situ iron fertilization studies. Global Biogeochem Cycles
  • Tollefson, J. (2012). Ocean-fertilization project off Canada sparks furore. Nature 490 (7421)
  • Schiermeier, Q.(2012). Dumping iron at sea does sink carbon
  • Jones, V. (2012). Global Biogeochemical Cycles. Global environmental change lecture powerpoint.
  • ­Cao, L.; Caldeira, K.(2010) Can ocean iron fertilization mitigate
    ocean acidification?

Friday, 16 November 2012

A Short Video Explains How Ocean Acidification Affects Marine Species


Here is a short video talking about ocean acidification and its impacts on sea lives and different depth of sea water.




The ocean absorbs almost a third of the carbon dioxide which released into the atmosphere every year, then carbon dioxide reacts with sea water to form carbonic acid. As a result, the acidity of sea water increases. Even a small change of seawater pH value may cause significant impacts on marine species. Consequently the food web is affected indirectly. Moreover, ocean acidification is impacting shallower area much more than deep area. 

Next post, I will talk about potential methods used by geo-engineers to slow down ocean acidification.

Wednesday, 14 November 2012

What Happened To the Oceans?


From this post I will talk about how the increases of concentration of atmospheric carbon dioxide affects the ocean and carbon reduction methods used related to the ocean.
Ocean acidification is one of the major results as the increases of concentration of atmospheric carbon dioxide. Frank (2004) stated that up to 30 per cent of anthropogenic CO2 are dissolved into the oceans, lakes and rivers. Carbon dioxide reacts with water to produce carbonic acid H2CO3. Carbonic acid is soluble acid which gives hydronium ions (H+).
The chemical reaction is
CO2 + H2O = H2CO3 = 2H+ +CO32-
As the concentration of H+ ions in the ocean increases, the acidity of the ocean rises (pH value reduces). The Copenhagen Diagnosis (2009) described that the acidity of surface ocean waters has increased by approximately 30 per cent, and the amount of carbon dioxide absorbed by the upper layer of the oceans is increasing by near 2 billion tons per year. Currently, the average pH value of surface ocean was around 8.07, however, the value was 8.179 before industrial revolutions (Orr. 2005), meanwhile it is predicted that the average pH value of surface ocean will continue to grow , and the number may reach about 7.95 by the year 2050.
The increase of ocean acidity may cause numerous results. Firstly the change in pH value of the ocean has serious impacts on marine lives, especially oceanic calcifying organisms (e.g. corals, foraminifera and coccoliths). The rate of dissolution of calcareous material increases when the acidity rises, as a result, calcification rate of those oceanic calcifying organisms is reduced significantly.
A research by Albright (2010) specified that, by the end of this century, coral reefs will be erode quicker than they can be built. This may have massive impacts on the long-term viability of these ecosystems and perhaps affect more than one million species that depend on coral reef habitat.



The photos from National Geographic below show what happens to a pteropod’s shell when placed in sea water with pH and carbonate levels projected for the year 2100. The shell slowly dissolves after 45 days.





Reference:
  • Frank, J.; et al. (July 2004). Impact of Anthropogenic CO2 on the CaCO3 System in the Oceans. Science 305(5682).
  • The Copenhagen Diagnosis: Climate Science Report:http://www.copenhagendiagnosis.org/
  • Orr, James C.; et al. (2005). Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms. Nature 437 (7059): 681–686.
  • Albrighta, R.; et al. (2010) Ocean acidification compromises recruitment success of the threatened Caribbean coral Acropora palmate.
  • What is Ocean Acidification. http://www.pmel.noaa.gov/co2/story/What+is+Ocean+Acidification%3F

Saturday, 10 November 2012

What Else Besides the Warming?



Last time I posted some videos about the global warming caused by the increase of atmospheric carbon dioxide concentration. The leading global surface temperature reconstructions illustrated that Earth has warmed since 1880.  The 20 warmest years have happened from the year of 1981 and with all 10 of the warmest years occurring in the past 12 years. 
Besides global warming, there are many other effects directly or indirectly caused by the atmospheric carbon dioxide increases.
Sea level rises
Global sea level has been rising around 17 centimeters for the last hundred years. The sea level rising rate in the past ten years was almost double that of the last century. Moreover, the sea level is still continue to grow at this moment.
Glacial retreat and shrinking ice sheets
Data from NASA's Gravity Recovery and Climate Experiment show that Greenland lost 150 to 250 cubic kilometers of ice every year from 2002 to 2006 while Antarctica lost around 152 cubic kilometers of ice from the year of 2002 to 2005. Meanwhile, The national snow and ice data center of the USA stated that glaciers are declining universally in the world, including in the Himalayas, Alps, Rockies, Alaska and Andes. The Greenland and Antarctic ice sheets have reduced massively.
Both the size and thickness of Arctic sea ice has declined rapidly over the last several decades


Here are comparison photo form NSIDC


 Ocean acidification
The increase of atmospheric carbon dioxide has increased the acidity of the oceans.  
The Copenhagen Diagnosis indicated that, ever since the start of the Industrial revolutions, the acidity of
surface ocean waters has increased by approximately 30 per cent. This increase is the consequence of individuals releasing more carbon dioxide into the atmosphere and thus, more being absorbed into the oceans. The amount of carbon dioxide absorbed by the upper layer of the oceans is increasing by near 2 billion tons per year.

Extreme events
The increase of carbon dioxide in the atmosphere is one fundamental source of the increase number of extreme events. The high temperature events records of the USA has increased since last 50 years while the records of low temperature events reduced.

After reading week, I am going to discuss potential methods we could use to reduce the concentration of atmospheric carbon dioxide.

Reference:

Friday, 2 November 2012

Videos About Global Warming

  One of the most well-known results of increase of atmospheric carbon dixoide is the "Global Warming". Here are several videos from Youtube talk about how the carbon dioxide and other greenhouse gases changed the climate.




The Earth’s climate has warmed over the last hundred years, and human activity changing the atmospheric composition is likely a significant driving factor. National Energy Information Center (NEIC) in May 2001 specified that "Greenhouse gases are accumulating in Earth’s atmosphere as a result of human activities, causing surface air temperatures and sub-surface ocean temperatures to rise. Temperatures are, in fact, rising. The changes observed over the last several decades are likely mostly due to human activities, but we cannot rule out that some significant part of these changes is also a reflection of natural variability."


Reference:

  • National Energy Information Center (NEIC), http://www.eia.gov/oiaf/1605/ggccebro/chapter1.html