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The above discussion emphasizes worldwide energy balance. It is also valuable to understand the ratio of reserves to annual consumption (R/C) by region or country. For example, [[energy policy of the United Kingdom]] recognizes that Europe's R/C value is 3.0, very low by world standards, and exposes that region to energy vulnerability. Specific alternatives to fossil fuels are a subject of intense debate worldwide.
The above discussion emphasizes worldwide energy balance. It is also valuable to understand the ratio of reserves to annual consumption (R/C) by region or country. For example, [[energy policy of the United Kingdom]] recognizes that Europe's R/C value is 3.0, very low by world standards, and exposes that region to energy vulnerability. Specific alternatives to fossil fuels are a subject of intense debate worldwide.


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== Environmental effects ==
{{mainarticle|Global Warming}}

In the United States, more than 90% of [[greenhouse gas]] emissions come from the combustion of fossil fuels.<ref>US EPA.2000. Inventory of U.S. Greenhouse Gas Emissions and Sinks: 1990-1998, Rep. EPA 236-R-00-01. US EPA, Washington, DC, http://www.epa.gov/globalwarming</ref> Combustion of fossil fuels also produces other air pollutants, such as [[nitrogen oxides]], [[sulfur dioxide]], [[volatile organic compounds]] and [[heavy metals]].

According to Environment Canada:
<blockquote>"The electricity sector is unique among industrial sectors in its very large contribution to emissions associated with nearly all air issues. Electricity generation produces a large share of Canadian nitrogen oxides and sulphur dioxide emissions, which contribute to smog and acid rain and the formation of fine particulate matter. It is the largest uncontrolled industrial source of mercury emissions in Canada. Fossil fuel-fired electric power plants also emit carbon dioxide, which may contribute to climate change. In addition, the sector has significant impacts on water and habitat and species. In particular, hydro dams and transmission lines have significant effects on water and biodiversity."<ref>{{cite web|url=http://www.ec.gc.ca/cleanair-airpur/Electricity-WSDC4D330A-1_En.htm|title=Electricity Generation|accessdate=2007-03-23}}</ref>
</blockquote>

Combustion of fossil fuels generates sulfuric, carbonic, and [[nitric acid]]s, which fall to Earth as [[acid rain]], impacting both natural areas and the built environment. Monuments and sculptures made from [[marble]] and limestone are particularly vulnerable, as the acids dissolve [[calcium carbonate]].

Fossil fuels also contain radioactive materials, mainly [[uranium]] and [[thorium]], that are released into the atmosphere. In 2000, about 12,000 [[metric tons]] of thorium and 5,000 metric tons of uranium were released worldwide from burning coal.<ref>[http://www.ornl.gov/info/ornlreview/rev26-34/text/colmain.html Coal Combustion: Nuclear Resource or Danger] - Alex Gabbard</ref> It is estimated that during 1982, US coal burning released 155 times as much radioactivity into the atmosphere as the [[Three Mile Island]] incident.<ref>[http://www.physics.ohio-state.edu/~aubrecht/coalvsnucMarcon.pdf#page=8 Nuclear proliferation through coal burning] - Gordon J. Aubrecht, II, Ohio State University</ref> However, this radioactivity from coal burning is minuscule at each source and has not shown to have any adverse effect on human physiology.{{Fact|date=February 2008}}

Burning coal also generates large amounts of [[bottom ash]] and [[fly ash]]. These materials are used in a wide variety of [[Fly ash#Fly ash reuse|applications]], utilizing, for example, about 40% of the US production.<ref>{{cite web | author = American Coal Ash Association | title = "CCP Production and Use Survey"| url = http://www.acaa-usa.org/PDF/2005_CCP_Production_and_Use_Figures_Released_by_ACAA.pdf}}</ref>

Harvesting, processing, and distributing fossil fuels can also create environmental concerns. [[Coal mining]] methods, particularly mountaintop removal and strip mining, have negative environmental impacts, and offshore oil drilling poses a hazard to aquatic organisms. [[Oil refinery|Oil refineries]] also have negative environmental impacts, including air and water pollution. Transportation of coal requires the use of diesel-powered locomotives, while crude oil is typically transported by tanker ships, each of which requires the combustion of additional fossil fuels.

[[Environmental regulation]] uses a variety of approaches to limit these emissions, such as command-and-control (which mandates the amount of pollution or the technology used), economic incentives, or voluntary programs.

An example of such regulation in the USA is the "EPA is implementing policies to reduce airborne mercury emissions. Under regulations issued in 2005, coal-fired power plants will need to reduce their emissions by 70 percent by 2018."<ref>{{cite web|url=http://www.energystar.gov/ia/partners/promotions/change_light/downloads/Fact_Sheet_Mercury.pdf|title=Frequently Asked Questions, Information on Proper Disposal of Compact Fluorescent Light Bulbs (CFLs)|accessdate=2007-03-19}}</ref>.

In economic terms, pollution from fossil fuels is regarded as a negative [[externality]]. Taxation is considered one way to make societal costs explicit, in order to 'internalize' the cost of pollution. This aims to make fossil fuels more expensive, thereby reducing their use and the amount of pollution associated with them, along with raising the funds necessary to counteract these factors. Although European nations impose some pollution taxes, they also give billions of subsidies{{clarify-inline}} to the fossil fuel industry, offsetting the taxes.{{Fact|date=March 2008}}

Former CIA Director James Woolsey recently outlined the national security arguments in favor of moving away from fossil fuels.<ref>[http://www.law.uh.edu/eelpj/symposium.html Video of Woolsey speech]</ref>


== See also ==
== See also ==

Revision as of 13:51, 25 September 2008

Fossil fuels or mineral fuels are fossil source fuels, that is, hydrocarbons found within the top layer of the Earth’s crust.

They range from volatile materials with low carbon:hydrogen ratios like methane, to liquid petroleum to nonvolatile materials composed of almost pure carbon, like anthracite coal. Methane can be found in hydrocarbon fields, alone, associated with oil, or in the form of methane clathrates. It is generally accepted that they formed from the fossilized remains of dead plants and animals[1] by exposure to heat and pressure in the Earth's crust over hundreds of millions of years.[2] This is known as the biogenic theory and was first introduced by Georg Agricola in 1556 and later by Mikhail Lomonosov in 1757. There is an opposing more modern theory that the more volatile hydrocarbons, especially natural gas, are formed by abiogenic processes, that is no living material was involved in their formation.

It was estimated by the Energy Information Administration that in 2005, 86% of primary energy production in the world came from burning fossil fuels, with the remaining non-fossil sources being hydroelectric 6.3%, nuclear 6.0%, and other (geothermal, solar, wind, and wood and waste) 0.9 percent.[3]

Fossil fuels are non-renewable resources because they take millions of years to form, and reserves are being depleted much faster than new ones are being formed. Concern about fossil fuel supplies is one of the causes of regional and global conflicts. The production and use of fossil fuels raise environmental concerns. A global movement toward the generation of renewable energy is therefore under way to help meet increased energy needs.

The burning of fossil fuels produces around 21.3 billion tonnes (= 21.3 gigatons) of carbon dioxide per year, but it is estimated that natural processes can only absorb about half of that amount, so there is a net increase of 10.65 billion tonnes of atmospheric carbon dioxide per year (one tonne of atmospheric carbon is equivalent to 44/12 or 3.7 tonnes of carbon dioxide).[4] Carbon dioxide is one of the greenhouse gases that enhances radiative forcing and contributes to global warming, causing the average surface temperature of the Earth to rise in response, which climate scientists agree will cause major adverse effects, including reduced biodiversity.

Origin

According to the biogenic theory, petroleum is formed from the preserved remains of organisms including phytoplankton and zooplankton that have settled to the sea (or lake) bottom in large quantities under anoxic conditions. Over geological time, this organic matter, mixed with mud, is buried under heavy layers of sediment. The resulting high levels of heat and pressure cause the organic matter to chemically change during diagenesis, first into a waxy material known as kerogen which is found in various oil shales around the world, and then with more heat into liquid and gaseous hydrocarbons in a process known as catagenesis.

Terrestrial plants, on the other hand, tend to form coal. Many of the coal fields date to the Carboniferous period of Earth's history.

Comparative figures:

  • 1 litre of regular gasoline is the time-rendered result of about 23.5 metric tonnes of ancient organic material deposited on the ocean floor.[5]
  • The total fossil fuel used in the year 1997 is the result of 422 years of all plant matter that grew on the entire surface and in all the oceans of the ancient earth.[5]

Importance

Fossil fuels are of great importance because they can be burned (oxidized to carbon dioxide and water), producing significant amounts of energy.

The use of coal as a fuel predates recorded history. Semi-solid hydrocarbons from seeps were also burned in ancient times,[6] but these materials were mostly used for waterproofing and embalming.[7]

Commercial exploitation of petroleum, largely as a replacement for oils from animal sources (notably whale oil) for use in oil lamps began in the nineteenth century.[8]

Natural gas, once flared-off as an un-needed byproduct of petroleum production, is now considered a very valuable resource.[9].

Heavy crude oil, which is very much more viscous than conventional crude oil, and tar sands, where bitumen is found mixed with sand and clay, are becoming more important as sources of fossil fuel[10]. Oil shale and similar materials are sedimentary rocks containing kerogen, a complex mixture of high-molecular weight organic compounds, which yield synthetic crude oil when heated (pyrolyzed). These materials have yet to be exploited commercially.[11]

This fuels are employed in fossil fuel internal combustion engines (this includes petroleum and other fossil fuel ICES, as compressed natural gas, liquified petroleum...), fossil fuel power stations and other uses.

Prior to the latter half of the eighteenth century, windmills or watermills provided the energy needed for industry such as milling flour, sawing wood or pumping water, and burning wood or peat provided domestic heat. The wide-scale use of fossil fuels, coal at first and petroleum later, to fire steam engines, enabled the Industrial Revolution. At the same time, gas lights using natural gas or coal gas were coming into wide use. The invention of the internal combustion engine and its use in automobiles and trucks greatly increased the demand for gasoline and diesel oil, both made from fossil fuels. Other forms of transportation, railways and aircraft also required fossil fuels. The other major use for fossil fuels is in generating electricity.

Fossil fuels are also the main source of raw materials for the petrochemical industry.

FOSSIL FUELS = POO!

Levels and flows

Levels of primary energy sources are the reserves in the ground. Flows are production. The most important part of primary energy sources are the carbon based fossil energy sources. Oil, coal, and gas stood for 79.6% of primary energy production during 2002 (in million tonnes of oil equivalent (mtoe)) (34.9+23.5+21.2).

Levels (proved reserves)

  • Oil: 1,119 to 1,317 billion[12] barrels 2005-2007
  • Gas: 6,183 - 6,381 trillion cubic feetCite error: A <ref> tag is missing the closing </ref> (see the help page). (997,748*0.907186*4.879= 4,416 BBOE) (2005)

Flows (daily production) during 2006

  • Oil: 84 million barrels per day[13]
  • Gas: 104,435[14]*0.182)= 19 million barrels oil equivalent per day {MBOED}
  • Coal: 10,230[15]*0.907186*4.879= 29 MBOED

Years of production left in the ground with the most optimistic proved reserve estimates (Oil & Gas Journal, World Oil)

  • Oil: 1,317,000 million barrel reserve/84 million barrels used per day/365 days per year= 43 years
  • Gas: 1,161,000 million barrels equivalent reserve/19 million barrel equivalent used per day/365 days per year= 167 years
  • Coal: 4,416,000 million barrels equivalent reserve/29 million barrel equivalent used per day/365 days per year= 417 years

Note that this calculation assumes that the product could be produced at a constant level for that number of years and that all of the proved reserves could be recovered. In reality, consumption of all three resources has been increasing. While this suggests that the resource will be used up more quickly, in reality, the production curve is much more akin to a bell curve. At some point in time, the production of each resource within an area, country, or globally will reach a maximum value, after which, the production will decline until it reaches a point where is no longer economically feasible or physically possible to produce. See Hubbert peak theory for detail on this decline curve with regard to petroleum.

The above discussion emphasizes worldwide energy balance. It is also valuable to understand the ratio of reserves to annual consumption (R/C) by region or country. For example, energy policy of the United Kingdom recognizes that Europe's R/C value is 3.0, very low by world standards, and exposes that region to energy vulnerability. Specific alternatives to fossil fuels are a subject of intense debate worldwide.

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See also

References

  1. ^ Dr. Irene Novaczek. "Canada's Fossil Fuel Dependency". Elements. Retrieved 2007-01-18.
  2. ^ "Fossil fuel". EPA. Retrieved 2007-01-18.
  3. ^ "International Energy Annual 2005". Retrieved 2007-09-09.
  4. ^ "US Department of Energy on greenhouse gases". Retrieved 2007-09-09.
  5. ^ a b "Quirks and Quarks, CBC science show". Retrieved 2008-04-11.
  6. ^ "Encyclopedia Britannica, use of oil seeps in accient times". Retrieved 2007-09-09.
  7. ^ Bilkadi, Zayn (1994), BULLS FROM THE SEA : Ancient Oil Industries, Aramco World, retrieved 2007-09-09
  8. ^ Ball, Max W. (1965). This Fascinating Oil Business. Indianapolis: Bobbs-Merrill. ISBN 0-672-50829-X. {{cite book}}: Unknown parameter |coauthors= ignored (|author= suggested) (help)
  9. ^ Kaldany,, Rashad, Director Oil, Gas, Mining and Chemicals Dept, World Bank (13). Global Gas Flaring Reduction: A Time for Action! (PDF). Global Forum on Flaring & Gas Utilization. Paris. Retrieved 2007-09-09. {{cite conference}}: Check date values in: |date= and |year= / |date= mismatch (help); Unknown parameter |month= ignored (help)CS1 maint: extra punctuation (link) CS1 maint: multiple names: authors list (link)
  10. ^ "Oil Sands Global Market Potential 2007". Retrieved 2007-09-09.
  11. ^ "US Department of Energy plans for oil shale development". Retrieved 2007-09-09.
  12. ^ World Proved Reserves of Oil and Natural Gas, Most Recent Estimates
  13. ^ http://www.eia.doe.gov/emeu/international/RecentPetroleumConsumptionBarrelsperDay.xls
  14. ^ http://www.eia.doe.gov/pub/international/iealf/table13.xls
  15. ^ http://www.eia.doe.gov/pub/international/iealf/table14.xls

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