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Most countries are Parties to theUnited Nations Framework Convention on Climate Change (UNFCCC).The ultimate objective of the Convention is to prevent "dangerous" human interference of the climate system.As is stated in the Convention, this requires that GHGs are stabilized in the atmosphere at a level where ecosystems can adapt naturally to climate change,food productionis not threatened, and economic development can proceed in a sustainable fashion.
The UNFCCC recognizes differences among countries in their responsibility to act on climate change.In theKyoto Protocolto the UNFCCC, most developed countries (listed in Annex I of the treaty) took on legally binding commitments to reduce their emissions.Policy measures taken in response to these commitments have reduced emissions.For many developing (non-Annex I) countries, reducingpovertyis their overriding aim.
Reducing the amount of future climate change is called mitigationof climate change. The IPCC defines mitigation as activities that reduce greenhouse gas (GHG) emissions, or enhance the capacity ofcarbon sinksto absorb GHG’s from the atmosphere.Many countries, bothdeveloping anddeveloped, are aiming to use cleaner, less polluting, technologies.Use of these technologies aids mitigation and could result in substantial reductions in CO2emissions. Policies include targets for emissions reductions, increased use ofrenewable energy, and increasedenergy efficiency. Studies indicate substantial potential for future reductions in emissions.
Other policy responses includeadaptationto climate change. Adaptation to climate change may be planned, e.g., by local or national government, or spontaneous, i.e., done privately without government intervention.The ability to adapt (called "adaptive capacity") is closely linked tosocialandeconomic development.Even societies with high capacities to adapt are still vulnerable to climate change. Planned adaptation is already occurring on a limited basis. The barriers, limits, and costs of future adaptation are not fully understood.
Another policy response is engineering of the climate (geo engineering). This policy response is sometimes grouped together with mitigation.Geo engineering is largely unproven, and reliable cost estimates for it have not yet been published.
Reducing the amount of future climate change is called mitigationof climate change. The IPCC defines mitigation as activities that reduce greenhouse gas (GHG) emissions, or enhance the capacity ofcarbon sinksto absorb GHG’s from the atmosphere.Many countries, bothdeveloping anddeveloped, are aiming to use cleaner, less polluting, technologies.Use of these technologies aids mitigation and could result in substantial reductions in CO2emissions. Policies include targets for emissions reductions, increased use ofrenewable energy, and increasedenergy efficiency. Studies indicate substantial potential for future reductions in emissions.
Other policy responses includeadaptationto climate change. Adaptation to climate change may be planned, e.g., by local or national government, or spontaneous, i.e., done privately without government intervention.The ability to adapt (called "adaptive capacity") is closely linked tosocialandeconomic development.Even societies with high capacities to adapt are still vulnerable to climate change. Planned adaptation is already occurring on a limited basis. The barriers, limits, and costs of future adaptation are not fully understood.
Another policy response is engineering of the climate (geo engineering). This policy response is sometimes grouped together with mitigation.Geo engineering is largely unproven, and reliable cost estimates for it have not yet been published.
Global warming may be detected innatural,ecologicalorsocialsystems as a change having statistical significance.Attribution of these changes e.g., to natural or human activities, is the next step following detection.
NATURAL SYSTEMS
Sparse records indicate that glaciers have been retreating since the early 1800s. In the 1950s measurements began that allow the monitoring of glacial mass balance, reported to theWGMSand theNSIDC.
Global warming has been detected in a number of systems. Some of these changes, e.g., based on the instrumental temperature record, have been described in the section on temperature changes. Rising sea levels and observed decreases in snow and ice extent are consistent with warming.Most of the increase in global average temperature since the mid-20thcentury is, with high probability,attributable to human-induced changes in greenhouse gas concentrations.
Even with current policies to reduce emissions, global emissions are still expected to continue to grow over the coming decades.Over the course of the 21stcentury, increases in emissions at or above their current rate would very likely induce changes in the climate system larger than those observed in the 20thcentury.
In the IPCC Fourth Assessment Report, across a range of future emission scenarios, model-based estimates of sea level rise for the end of the 21stcentury (the year 2090-2099, relative to 1980-1999) range from 0.18 to 0.59 m. These estimates, however, were not given a likelihood due to a lack of scientific understanding, nor was an upper bound given for sea level rise. Over the course of centuries to millennia, the melting of ice sheets could result in sea level rise of 4–6 m or more.
Changes in regional climate are expected to include greater warming over land, with most warming at high northernlatitudes, and least warming over theSouthern Oceanand parts of the NorthAtlantic Ocean.Snow cover area and sea ice extent are expected to decrease. The frequency of hot extremes, heat waves, and heavy precipitation will increase.
ECOLOGICAL SYSTEMS
In terrestrialecosystems, the earlier timing ofspringevents, and pole ward and upward shifts in plant and animal ranges, has been linked with high confidence to recent warming.Future climate change is expected to particularly affect certain ecosystems, includingtundra,mangroves, andcoral reefs.It is expected that most ecosystems will be affected by higher atmospheric CO2levels, combined with higher global temperatures.Overall, it is expected that climate change will result in theextinctionof many species and reduced diversity of ecosystems.
SOCIAL SYSTEMS
There is some evidence of regional climate change affecting systems related to human activities, including agricultural andforestrymanagement activities at higher latitudes in the Northern Hemisphere.Future climate change is expected to particularly affect some sectors and systems related to human activities.Water resourcesmay be stressed in some dry regions at mid-latitudes, the drytropics, and areas that depend onsnowand ice melt. Reduced water availability may affect agriculture in low latitudes. Low-lyingcoastalsystems are vulnerable to sea level rise and storm surge. It is expected that some regions will be particularly affected by climate change, including theArctic,Africa, small islands, andAsianand Africanmega deltas. Some people, such as the poor, young children, and the elderly, are particularly at risk, even in high-income areas.
The geographic distribution of surface warming during the 21stcentury calculated by theHadCM3climate model if a business as usual scenario is assumed for economic growth and greenhouse gas emissions. In this figure, the globally averaged warming corresponds to 3.0 °C (5.4 °F).
The main tools for projecting future climate changes are mathematicalbased on physical principles includingfluid dynamics,thermodynamicsandradiative transfer. Although they attempt to include as many processes as possible, simplifications of the actual climate system are inevitable because of the constraints of available computer power and limitations in knowledge of the climate system. All modern climate models are in fact combinationof models for different parts of the Earth. These include an atmospheric model for air movement, temperature, clouds, and other atmospheric properties; an ocean model that predicts temperature,salt content, and circulation of ocean waters; models for ice cover on land and sea; and a model of heat and moisture transfer from soil and vegetation to the atmosphere. Some models also include treatments of chemical and biological processes.Warming due to increasing levels of greenhouse gases is not an assumption of the models; rather, it is an end result from the interaction of greenhouse gases with radiative transfer and other physical processes. Although much of the variation in model outcomes depends on the greenhouse gas emissions used as inputs, the temperature effect of a specific greenhouse gas concentration (climate sensitivity) varies depending on the model used. The representation of clouds is one of the main sources of uncertainty in present-generation models.
Global climate model projections of future climate most often have used estimates of greenhouse gas emissions from the IPCCSpecial Report on Emissions Scenarios(SRES). In addition to human-caused emissions, some models also include a simulation of thecarbon cycle; this generally shows a positive feedback, though this response is uncertain. Some observational studies also show a positive feedback.Including uncertainties in future greenhouse gas concentrations and climate sensitivity, the IPCC anticipates a warming of1.1 °C to 6.4 °C(2.0 °F to 11.5 °F)by the end of the 21st century, relative to 1980–1999.
Models are also used to help investigate thecauses of recent climate changeby comparing the observed changes to those that the models project from various natural and human-derived causes. Although these models do not unambiguously attribute the warming that occurred from approximately 1910 to 1945 to either natural variation or human effects, they do indicate that the warming since 1970 is dominated by man-made greenhouse gas emissions.
The physical realism of models is tested by examining their ability to simulate current or past climates.Current climate models produce a good match to observations of global temperature changes over the last century, but do not simulate all aspects of climate.Not alleffects of global warmingare accurately predicted by theclimate modelsused by theIPCC. For example, observed Arctic shrinkagehas been faster than that predicted.
Feedbackis a process in which changing one quantity changes a second quantity, and the change in the second quantity in turn changes the first.Positive feedbackamplifies the change in the first quantity whilenegative feedbackreduces it. Feedback is important in the study of global warming because it may amplify or diminish the effect of a particular process. The main positive feedback in global warming is the tendency of warming to increase the amount ofwater vaporin the atmosphere, a significantgreenhouse gas. The main negative feedback isradiative cooling, whichincreases as the fourth power of temperature; the amount of heat radiated from the Earth into space increases with the temperature of Earth's surface and atmosphere. Imperfect understanding of feedbacks is a major cause of uncertainty and concern about global warming.
Variations in solar output have been the cause of past climate changes.The consensus among climate scientists is that changes in solar forcing probably had a slight cooling effect in recent decades. This result is less certain than some others, with a few papers suggesting a warming effect.
Greenhouse gases and solar forcing affect temperatures in different ways. While both increased solar activity and increased greenhouse gases are expected to warm the troposphere, an increase in solar activity should warm the stratospherewhile an increase in greenhouse gases should cool the stratosphere.Observations show that temperatures in the stratosphere have been cooling since 1979, when satellite measurements became available.Radiosonde(weather balloon) data from the pre-satellite era show cooling since 1958, though there is greater uncertainty in the early radiosonde record.
A related hypothesis, proposed byHenrik Svensmark, is that magnetic activity of the sun deflects cosmic rays that may influence the generation of cloud condensation nuclei and thereby affect the climate. Other research has found no relation between warming in recent decades andcosmic rays.A recent study concluded that the influence of cosmic rays on cloud cover is about a factor of 100 lower than needed to explain the observed changes in clouds or to be a significant contributor to present-day climate change.
Ship tracksover theAtlantic Oceanon the east coast of the United States. The climatic impacts from aerosol forcing could have a large effect on climate through the indirect effect.
Global dimming, a gradual reduction in the amount of global directirradianceat the Earth's surface, has partially counteracted global warming from 1960 to the present. The main cause of this dimming isaerosolsproduced by volcanoes andpollutants. These aerosols exert a cooling effect by increasing the reflection of incoming sunlight. The effects of the products of fossil fuel combustion—CO2and aerosols—have largely offset one another in recent decades, so that net warming has been due to the increase in non-CO2greenhouse gases such asmethane.
In addition to their direct effect by scattering and absorbing solar radiation, aerosols have indirect effects on the radiation budget.Sulfate aerosols act ascloud condensation nucleiand thus lead to clouds that have more and smaller cloud droplets. These cloudsreflect solar radiationmore efficiently than clouds with fewer and larger droplets.This effect also causes droplets to be of more uniform size, which reduces growth of raindropsand makes the cloud more reflective to incoming sunlight.Indirect effects are most noticeable in marine stratiform clouds, and have very little radiative effect on convective clouds.
Sootmay cool or warm the surface, depending on whether it is airborne or deposited. Atmospheric sootaerosols directly absorb solar radiation, which heats the atmosphere and cools the surface. In isolated areas with high soot production, such as rural India, as much as 50% of surface warming due to greenhouse gases may be masked byatmospheric brown clouds.Atmospheric soot always contributes additional warming to the climate system. When deposited, especially on glaciers or on ice in arctic regions, the lower surfacealbedocan also directly heat the surface.The influences of aerosols, including black carbon, are most pronounced in the tropics and sub-tropics, particularly in Asia, while the effects of greenhouse gases are dominant in the extra tropics and southern hemisphere.
The greenhouse effect is the process by whichabsorptionand emissionofinfraredradiation by gases in theatmosphereare purported to warm aplanet's lower atmosphere and surface. It was proposed byJoseph Fourierin 1824 and was first investigated quantitatively bySvante Arrheniusin 1896.The question in terms of global warming is how the strength of the presumed greenhouse effect changes when human activity increases the concentrations of greenhouse gases in the atmosphere.
Naturally occurring greenhouse gases have a mean warming effect of about 33 °C (59 °F).The major greenhouse gases arewater vapor, which causes about 36–70 percent of the greenhouse effect;carbon dioxide(CO2), which causes 9–26 percent;methane(CH4), which causes 4–9 percent; and ozone(O3), which causes 3–7 percent.Clouds also affect the radiation balance, but they are composed of liquid water or ice and so havedifferent effects on radiationfrom water vapor.
Human activity since theIndustrial Revolutionhas increased the amount of greenhouse gases in the atmosphere, leading to increasedradiative forcingfrom CO2,methane, tropospheric ozone,CFCsandnitrous oxide. Theconcentrationsof CO2and methane have increased by 36% and 148% respectively since 1750.These levels are much higher than at any time during the last 650,000 years, the period for which reliable data has been extracted fromice cores.Less direct geological evidence indicates that CO2values higher than this were last seen about 20 million years ago.Fossil fuelburning has produced about three-quarters of the increase in CO2from human activity over the past 20 years. Most of the rest is due to land-use change, particularlydeforestation.
CO2emissions are continuing to rise due to the burning of fossil fuels and land-use change. Estimates of changes in future emission levels of greenhouse gases have been made, and are called "emissions scenarios." The future level of emissions will depend on uncertain economic,sociological, technological, and natural developments. In most scenarios, emissions continue to rise over the century, while in a few, emissions are reduced.These emission scenarios, combined with carbon cycle modeling, have been used to produce estimates of how atmospheric concentrations of greenhouse gases will change in the future. Using the six IPCCSRES"marker" scenarios, models suggest that by the year 2100, the atmospheric concentration of CO2could range between 541 and 970 ppm.This is an increase of 90-250% above the concentration in the year 1750. Fossil fuel reserves are sufficient to reach these levels and continue emissions past 2100 ifcoal,tar sandsor methane clathratesare extensively exploited.
The destruction ofstratosphericozone bychlorofluorocarbonsis sometimes mentioned in relation to global warming. Although there are a fewareas of linkage, the relationship between the two is not strong. Reduction of stratospheric ozone has a cooling influence, but substantial ozone depletion did not occur until the late 1970s.Ozone in the troposphere(the lowest part of theEarth's atmosphere) does contribute to surface warming.
Recent atmosphericcarbon dioxide (CO2) increases. Monthly Co2 measurements display seasonal oscillations in overall yearly uptrend; each year's maximum occurs during the Northern Hemisphere's late spring, and declines during its growing season as plants remove some atmospheric CO2.