An emission intensity (also carbon intensity or C.I.) is the emission rate of a given pollutant relative to the intensity of a specific activity, or an industrial production process; for example of carbon dioxide released per megajoule of energy produced, or the ratio of greenhouse gas emissions produced to gross domestic product (GDP). Emission intensities are used to derive estimates of air pollutant or greenhouse gas emissions based on the amount of fuel combustion, the number of animals in animal husbandry, on industrial production levels, distances traveled or similar activity data. Emission intensities may also be used to compare the environmental impact of different fuels or activities. In some case the related terms emission factor and carbon intensity are used interchangeably. The jargon used can be different, for different fields/industrial sectors; normally the term "carbon" excludes other pollutants, such as particulate emissions. One commonly used figure is carbon intensity per kilowatt-hour ( CIPK), which is used to compare emissions from different sources of electrical power.
Different calculation methods can lead to different results. The results can largely vary also for different geographic regions and timeframes (see, in example, how C.I. of electricity varies, for different European countries, and how varied in a few years: from 2009 to 2013 the C.I. of electricity in the European Union fell on average by 20%, So while comparing different values of Carbon Intensity it is important to correctly consider all the boundary conditions (or initial hypotheses) considered for the calculations. For example, Chinese oil fields emit between 1.5 and more than 40 g of CO2e per Joule with about 90% of all fields emitting 1.5–13.5 g CO2e. Such highly skewed carbon intensity patterns necessitate disaggregation of seemingly homogeneous emission activities and proper consideration of many factors for understanding.
Emissionpollutant = Activity * Emission Factorpollutant
Intensities are also used in projecting possible future scenarios such as those used in the IPCC assessments, along with projected future changes in population, economic activity and energy technologies. The interrelations of these variables is treated under the so-called Kaya identity.
The level of uncertainty of the resulting estimates depends significantly on the source category and the pollutant. Some examples:
+ Lifecycle greenhouse gas emissions by electricity source |
4 |
12 |
16 |
230 |
22 |
45 |
46 |
469 |
1001 |
+ Emission factors of common fuels
! Fuel/ Resource ! Thermal g(CO2e)/MJth ! Energy Intensity (min & max estimate) W·hth/W·he ! Electric (min & max estimate) g(CO2)/kW·he | |||
wood | Hillebrand, K. 1993. The Greenhouse Effects of Peat Production and Use Compared with Coal, Natural Gas and Wood. Technical Research Centre of Finland . Seai.ie | ||
Peat | The CO2 emission factor of peat fuel 106 g CO2/MJ, . Imcg.net. Retrieved on 2011-05-09. | ||
Coal | B:91.50–91.72 Br:94.33 88 | B:2.62–2.85 Br:3.46 3.01 | B:863–941 Br:1,175 955 |
Oil | |||
Natural gas | cc:68.20 oc:68.40 51 | cc:2.35 (2.20 – 2.57) oc:3.05 (2.81 – 3.46) | cc:577 (491–655) oc:751 (627–891) 599 |
Geothermal power | ~ | TL0–1 TH91–122 | |
Uranium Nuclear power | WL0.18 (0.16~0.40) WH0.20 (0.18~0.35) | WL60 (10~130) WH65 (10~120) | |
Hydroelectricity | (0.020 – 0.137) | (6.5 – 44) | |
Conc. Solar Pwr | ±15# | ||
Photovoltaics | (0.16 – 0.67) | (53–217) | |
Wind power | (0.041 – 0.12) | (13–40) |
Legend: , , , , , , , , .
+ Carbon intensity of GDP, measured in MER |
1.03995 |
0.91721 |
0.56015 |
2.36849 |
0.30975 |
1.22310 |
0.48160 |
0.60725 |
+ Carbon intensity of GDP, measured in PPP |
0.43067 |
0.57356 |
0.30185 |
1.02797 |
0.32077 |
0.65723 |
0.46509 |
0.48058 |
In 2009 CO2 intensity of GDP in the OECD countries reduced by 2.9% and amounted to 0.33 kCO2/$05p in the OECD countries. ("$05p" = 2005 US dollars, using purchasing power parities). The USA posted a higher ratio of 0.41 kCO2/$05p while Europe showed the largest drop in CO2 intensity compared to the previous year (−3.7%). CO2 intensity continued to be roughly higher in non-OECD countries. Despite a slight improvement, China continued to post a high CO2 intensity (0.81 kCO2/$05p). CO2 intensity in Asia rose by 2% during 2009 since energy consumption continued to develop at a strong pace. Important ratios were also observed in countries in CIS and the Middle East.
However, while the reports from 2007 suggest that the CO2 emissions are going down recent studies find that the global emissions are rapidly escalating. According to the Climate Change 2022 Mitigation of Climate Change report, conducted by the IPCC, it states that it 2019 the world emissions output was 59 gigatonnes. This shows that global emissions has grown rapidly, increasing by about 2.1% each year compared from the previous decade.
The Commodity Exchange Bratislava (CEB) has calculated carbon intensity for Voluntary Emissions Reduction projects carbon intensity in 2012 to be 0.343 tn/MWh. Calculation of carbon intensity in 2012 kbb.sk, Slovakia
A 2024 report shows an increase of renewable energy production, reaching 50% of the energy mix Nowtricity 2024 yearly report
According to data from the European Commission, in order to achieve the EU goal of decreasing greenhouse gas emissions by at least 55% by 2030 compared to 1990, EU-based energy investment has to double from the previous decade to more than €400 billion annually this decade. This includes the roughly €300 billion in yearly investment required for energy efficiency and the roughly €120 billion required for power networks and renewable energy facilities.
The UNFCCC has accepted the Revised 1996 IPCC Guidelines for National Greenhouse Gas Inventories, developed and published by the Intergovernmental Panel on Climate Change (IPCC) as the emission estimation methods that must be used by the parties to the convention to ensure transparency, completeness, consistency, comparability and accuracy of the national greenhouse gas inventories. These IPCC Guidelines are the primary source for default emission factors. Recently IPCC has published the 2006 IPCC Guidelines for National Greenhouse Gas Inventories. These and many more greenhouse gas emission factors can be found on IPCC's Emission Factor Database. Commercially applicable organisational greenhouse gas emission factors can be found on the search engine, EmissionFactors.com.
Particularly for non-CO2e emissions, there is often a high degree of uncertainty associated with these emission factors when applied to individual countries. In general, the use of country-specific emission factors would provide more accurate estimates of emissions than the use of the default emission factors. According to the IPCC, if an activity is a major source of emissions for a country ('key source'), it is 'good practice' to develop a country-specific emission factor for that activity.
The European Monitoring and Evaluation Programme (EMEP) Task Force of the European Environment Agency has developed methods to estimate emissions and the associated emission factors for air pollutants, which have been published in the EMEP/CORINAIR Emission Inventory Guidebook EMEP/CORINAIR Emission Inventory Guidebook.eea.europa.eu, 2016, retrieved 13.7.2018 on Emission Inventories and Projections TFEIP. TFEIP, 2008-03-15 tfeip-secretariat
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