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{{R with history}} | |||
'''Solar variations''' are changes in the amount of ] emitted by the ]. There are periodic components to these variations, the principal one being the 11-year ] (or ]), as well as ] fluctuations.<ref></ref> Solar activity has been measured via satellites during recent decades and through 'proxy' variables in prior times. Climate scientists are interested in understanding what, if any, effect variations in solar activity have on the Earth. Effects on the earth caused by solar activity are called "solar forcing". | |||
{{Authority control}} | |||
The variations in total solar irradiance remained at or below the threshold of detectability until the satellite era, although the small fraction in ultra-violet wavelengths varies by a few percent. Total solar output is now measured to vary (over the last three 11-year ] cycles) by approximately 0.1% <ref></ref><ref name="IPCCtarWG1244">{{cite web | title=Solar Forcing of Climate | work=Climate Change 2001: Working Group I: The Scientific Basis | url=http://www.grida.no/climate/ipcc_tar/wg1/244.htm | accessdate = 2005-03-10}} </ref><ref name="AIPsolar">{{Citation | first=Spencer | last=Weart | author-link=Spencer R. Weart | contribution=Changing Sun, Changing Climate? | contribution-url=http://www.aip.org/history/climate/solar.htm | title=The Discovery of Global Warming | editor-first=Spencer | editor-last=Weart | editor-link=Spencer R. Weart | url=http://www.aip.org/history/climate/index.html | publisher=] | year=2006 | accessdate=2007-04-14 }}</ref> or about 1.3 W/m² peak-to-trough during the 11 year sunspot cycle. The amount of ] received at the outer surface of Earth's atmosphere varied little from an average value of 1,366 ]s per square meter (W/m²).<ref name="www.pmodwrc.ch.91">{{cite web | title=Construction of a Composite Total Solar Irradiance (TSI) Time Series from 1978 to present | url=http://www.pmodwrc.ch/pmod.php?topic=tsi/composite/SolarConstant | publisher=Physikalisch-Meteorologisches Observatorium Davos (PMOD)| accessdate = 2005-10-05}}</ref> There are no direct measurements of the longer-term variation and interpretations of ] measures of variations differ. On the low side North et. al. report results suggesting ~ 0.1% variation over the last 2,000 years. <ref name="NASreportsurftemp">{{Citation | chapter-url=http://books.nap.edu/openbook.php?record_id=11676&page=102 | chapter=Climate Forcings and Climate Models | title=Surface Temperature Reconstructions for the Last 2,000 Years | url=http://www.nap.edu/catalog.php?record_id=11676 | publisher=] | year=2006 | isbn=0-309-10225-1 | access-date=2007-04-19 | editor1-first=Gerald R. | editor1-last=North | editor2-first=Franco | editor2-last=Biondi | editor3-first=Peter | editor3-last=Bloomfield | editor4-first=John R. | editor4-last=Christy | editor4-link=John Christy | editor5-first=Kurt M. | editor5-last=Cuffey | editor6-first=Robert E. | editor6-last=Dickinson | editor7-first=Ellen R.M. | editor7-last=Druffel | editor8-first=Douglas | editor8-last=Nychka | editor9-first=Bette | editor9-last=Otto-Bliesner | editor10-first=Neil | editor10-last=Roberts | editor11-first=Karl K. | editor11-last=Turekian | editor12-first=John M. | editor12-last=Wallace }}</ref> Others suggest the change has been ~ 0.2% increase in solar irradiance just since the 17th century.<ref>{{Citation | first1=J. | last1=Lean | title=Evolution of the Sun's Spectral Irradiance Since the Maunder Minimum | url=ftp://ftp.ncdc.noaa.gov/pub/data/paleo/climate_forcing/solar_variability/lean2000_irradiance.txt | year=2000 | journal=Geophysical Research Letters | volume=27 | issue=16 | pages=2425–2428 | access-date=2008-02-01 | doi=10.1029/2000GL000043 | author=Lean, Judith }}</ref><ref></ref> | |||
The combination of solar variation and volcanic effects are likely to have contributed to ], for example during the ]. Apart from solar brightness variations, more subtle solar magnetic activity influences on climate from cosmic rays or the Sun's ultraviolet radiation cannot be excluded although confirmation is not at hand since physical models for such effects are still too poorly developed.<ref name="UCARbrightness"/> | |||
A literature review by Foukal et. al. (2006) concluded that there has been no net increase in solar brightness since the mid 1970s, and that changes in solar output within the past 400 years are unlikely to have played a major part in global warming.<ref>{{cite journal |last=Foukal |first=Peter |authorlink= |coauthors=''et al.'' |year=2006 |month= |title=Variations in solar luminosity and their effect on the Earth's climate |journal=Nature |volume=443 |issue=7108 |pages=161–166 |doi=10.1038/nature05072 |url= |accessdate= |quote= }}</ref> | |||
<!-- Commented out: </ref>]] --> | |||
== History of study into solar variations == | |||
].]] | |||
The longest recorded aspect of solar variations are changes in ]s. The first record of sunspots dates to around 800 BC in China and the oldest surviving drawing of a sunspot dates to 1128. In 1610, ]s began using the ] to make observations of sunspots and their motions. Initial study was focused on their nature and behavior.<ref name="solargreat">{{cite web | title=Great Moments in the History of Solar Physics 1| work =Great Moments in the History of Solar Physics | url=http://web.hao.ucar.edu/public/education/sp/great_moments.html| accessdate = 2006-03-19}}</ref> Although the physical aspects of sunspots were not identified until the 1900s, observations continued. Study was hampered during the 1600s and 1700s due to the low number of sunspots during what is now recognized as an extended period of low solar activity, known as the ]. By the 1800s, there was a long enough record of sunspot numbers to infer periodic cycles in sunspot activity. In 1845, ] professors ] and ] observed the Sun with a ] and determined that sunspots emitted less radiation than surrounding areas of the Sun. The emission of higher than average amounts of radiation later were observed from the solar ]e.<ref>{{cite journal |last=Arctowski |first=Henryk |authorlink= |coauthors= |year=1940 |month= |title=On Solar Faculae and Solar Constant Variations |journal=] |volume=26 |issue=6 |pages=406–411 |doi= |url=http://www.pnas.org/cgi/reprint/26/6/406.pdf |accessdate= |quote= |format=PDF}}</ref> | |||
Around 1900, researchers began to explore connections between solar variations and weather on Earth. Of particular note is the work of ]. Abbot was assigned by the ] (SAO) to detect changes in the radiation of the Sun. His team had to begin by inventing instruments to measure solar radiation. Later, when Abbot was head of the SAO, it established a solar station at ] to complement its data from ]. He detected 27 harmonic periods within the 273-month ]s, including 7, 13, and 39 month patterns. He looked for connections to weather by means such as matching opposing solar trends during a month to opposing temperature and precipitation trends in cities. With the advent of ], scientists such as ] attempted to connect variation in tree growth to periodic solar variations in the extant record and infer long-term secular variability in the solar constant from similar variations in millennial-scale chronologies.<ref> H.C. Fritts, 1976, Tree Rings and Climate, London: Academic Press. </ref> | |||
Statistical studies that correlate ] and ] with solar activity have been popular for centuries, dating back at least to 1801, when ] noted an apparent connection between wheat prices and sunspot records.<ref>{{cite web | |||
| url= http://www.hao.ucar.edu/Public/education/bios/herschel.html | |||
| title= William Herschel (1738–1822) | |||
|author= |last= |first= |authorlink= |coauthors= | |||
|date= |year= |month= |format= |work= | |||
| publisher= ] | |||
|pages= |language= |doi= |archiveurl= |archivedate= |quote= | |||
| accessdate= 2008-02-27 }} </ref> They now often involve high-density global datasets compiled from surface networks and ] observations and/or the forcing of ]s with synthetic or observed solar variability to investigate the detailed processes by which the effects of solar variations propagate through the Earth's climate system.<ref>{{Citation | first1=Charles D. | last1=Camp | first2=Ka-Kit | last2=Tung | title=The Influence of the Solar Cycle and QBO on the Late Winter Stratospheric Polar Vortex | url=http://www.amath.washington.edu/~cdcamp/Pub/Camp_Tung_JAS_2006.pdf |format=PDF| year=2006 | journal=EOS Trans. AGU | volume=87 | issue=52 | pages=Fall Meet. Suppl., Abstract #A11B–0862 | access-date=2007-04-15 | format={{dead link|date=June 2008}} – <sup></sup> | doi=10.1029/2006EO300005 }}</ref> | |||
==Solar activity== | |||
=== Sunspots === | |||
] | |||
]s are relatively dark areas on the radiating 'surface' (]) of the Sun where intense magnetic activity inhibits convection and cools the ]. ] are slightly brighter areas that form around sunspot groups as the flow of energy to the photosphere is re-established and both the normal flow and the sunspot-blocked energy elevate the radiating 'surface' temperature. Scientists have speculated on possible relationships between sunspots and solar luminosity since the historical sunspot area record began in the 17th century.<ref></ref> Correlations are now known to exist with decreases in luminosity caused by sunspots (generally < - 0.3 %) and increases (generally < + 0.05 %) caused both by faculae that are associated with active regions as well as the magnetically active 'bright network'. Modulation of the solar luminosity by magnetically active regions was not confirmed until satellite measurements of total solar irradiance began in the 1980s.<ref></ref> Nimbus 7 (launched ], ]) and the ] (launched ], ]) detected that because the areas surrounding sunspots are brighter, the overall effect is that more sunspots means a brighter sun. | |||
There had been some suggestion that variations in the solar diameter might cause variations in output. But recent work, mostly from the Michelson Doppler Imager instrument on ], shows these changes to be small, about 0.001% (Dziembowski et al., 2001). | |||
Various studies have been made using sunspot number (for which records extend over hundreds of years) as a ] for solar output (for which good records only extend for a few decades). Also, ground instruments have been calibrated by comparison with high-altitude and orbital instruments. Researchers have combined present readings and factors to adjust historical data. Other proxy data — such as the abundance of ] isotopes — have been used to infer solar magnetic activity and thus likely brightness. | |||
Sunspot activity has been measured using the ''']''' for about 300 years. This index (also known as the '''Zürich number''') uses both the number of sunspots and the number of groups of sunspots to compensate for variations in measurement. A 2003 study by ] of the ], ] found that sunspots had been more frequent since the 1940s than in the previous 1150 years.<ref>{{citation | |||
| first1=Ilya G.| last1=Usoskin | |||
| first2=Sami K.| last2=Solanki | |||
| first3=Manfred| last3=Schüssler | |||
| first4=Kalevi | last4=Mursula | |||
| first5=Katja | last5= Alanko | |||
| author2-link=Sami Solanki | |||
| title=A Millennium Scale Sunspot Number Reconstruction: Evidence For an Unusually Active Sun Since the 1940’s | |||
| journal=] | |||
| volume=91 | year=2003 | |||
| url=http://arxiv.org/pdf/astro-ph/0310823 | |||
| format=PDF | |||
| doi=10.1103/PhysRevLett.91.211101 | |||
| author=Usoskin, Ilya G. | |||
| pages=211101 | |||
}}</ref> | |||
] | |||
Sunspot numbers over the past 11,400 years have been reconstructed using ] dated ] concentrations. The level of solar activity during the past 70 years is exceptional — the last period of similar magnitude occurred over 8,000 years ago. The Sun was at a similarly high level of magnetic activity for only ~10% of the past 11,400 years, and almost all of the earlier high-activity periods were shorter than the present episode.<ref name="Solanski2004">{{citation | first1=Sami K.| last1=Solanki | author-link=Sami Solanki | first2=Ilya G.| last2=Usoskin | first3=Bernd | last3=Kromer | first4=Manfred| last4=Schüssler | first5=Jürg | last5=Beer | title=Unusual activity of the Sun during recent decades compared to the previous 11,000 years | journal=Nature | volume=431 | year=2004 | pages=1084–1087 | url=http://cc.oulu.fi/%7Eusoskin/personal/nature02995.pdf | format=PDF | doi=10.1038/nature02995 | access-date=2007-04-17 | author=Usoskin, Ilya G.}}, {{cite web | title=11,000 Year Sunspot Number Reconstruction | work=Global Change Master Directory | url=http://gcmd.nasa.gov/KeywordSearch/Metadata.do?Portal=GCMD&KeywordPath=%5BParameters%3ACategory%3D%27EARTH+SCIENCE%27%2CTopic%3D%27SUN-EARTH+INTERACTIONS%27%2CTerm%3D%27SOLAR+ACTIVITY%27%2CVariable%3D%27SUNSPOTS%27%5D&OrigMetadataNode=GCMD&EntryId=NOAA_NCDC_PALEO_2005-015&MetadataView=Brief&MetadataType=0&lbnode=gcmd3b | accessdate = 2005-03-11}}</ref> | |||
] | |||
{| class="wikitable" | |||
|+ '''Solar activity events and approximate dates''' | |||
|- | |||
! Event !! Start !! End | |||
|- | |||
| Oort minimum (see ]) || 1040 || 1080 | |||
|- | |||
| Medieval maximum (see ]) || 1100 || 1250 | |||
|- | |||
| Wolf minimum || 1280 || 1350 | |||
|- | |||
| ] || 1450 || 1550 | |||
|- | |||
| ] || 1645 || 1715 | |||
|- | |||
| ] || 1790 || 1820 | |||
|- | |||
| ] || 1950 || ongoing | |||
|} | |||
A list of historical Grand minima of solar activity <ref name="Usoskin07">{{citation | first1=Ilya G.| last1=Usoskin | first2=Sami K.| last2=Solanki | first3=Gennady A. | last3=Kovaltsov | title=Grand minima and maxima of solar activity: new observational constraints | journal= Astron.Astrophys. | volume=471 | pages=301–309 | url=http://cc.oulu.fi/~usoskin/personal/aa7704-07.pdf | format=PDF | doi=10.1051/0004-6361:20077704 | access-date=2007-04-17 | author=Usoskin, Ilya G.}}</ref> includes also Grand minima ca. 690 AD, 360 BC, 770 BC, 1390 BC, 2860 BC, 3340 BC, 3500 BC, 3630 BC, 3940 BC, 4230 BC, 4330 BC, 5260 BC, 5460 BC, 5620 BC, 5710 BC, 5990 BC, 6220 BC, 6400 BC, 7040 BC, 7310 BC, 7520 BC, 8220 BC, 9170 BC. | |||
===Solar cycles=== | |||
]s are cyclic changes in behavior of the Sun. Many possible patterns have been suggested; only the 11 and 22 year cycles are clear in the observations. | |||
] | |||
* 11 years: Most obvious is a gradual increase and decrease of the number of sunspots over a period ranging from 9 to 12 years, called the ], named after ]. Differential rotation of the sun's convection zone (as a function of latitude) consolidates magnetic flux tubes, increases their ] strength and makes them buoyant (see ]). As they rise through the solar atmosphere they partially block the convective flow of energy, cooling their region of the ], causing ']'. The Sun's radiating 'surface', the photosphere, is more active radiatively when there are more sunspots. Satellite monitoring of ] since 1980 has shown there is a direct relationship between the solar activity (sunspot) cycle and luminosity with a solar cycle peak-to-peak amplitude of about 0.1 %. <ref>></ref> Luminosity has also been found to decrease by as much as 0.3 % on a 10 day timescale when large groups of sunspots rotate across the Earth's view and increase by as much as 0.05 % for up to 6 months due to ] associated with the large sunspot groups. <ref>http://www.sciencemag.org/cgi/content/abstract/207/4427/177 Willson, R.C., Gulkis, S., Janssen, M., Hudson, H.S., Chapman, G.A., (1981), Observations of solar irradiance variability, Science, 211, p. 700 </ref> | |||
* 22 years: ], named after ]. The magnetic field of the Sun reverses during each Schwabe cycle, so the magnetic poles return to the same state after two reversals. | |||
* 87 years (70–100 years): ], named after ], is thought to be an amplitude modulation of the 11-year Schwabe Cycle (Sonnett and Finney, 1990).Braun, et al, (2005) | |||
* 210 years: ] (a.k.a. ]). Braun, et al, (2005). | |||
* 2,300 years: ] | |||
Other patterns have been detected: | |||
* In ]: 105, 131, 232, 385, 504, 805, 2,241 years (Damon and Sonnett, 1991). | |||
* During the ] 240 million years ago, mineral layers created in the Castile Formation show cycles of 2,500 years. | |||
The sensitivity of climate to cyclical variations in solar forcing will be higher for longer cycles due to the thermal inertia of the ocean, which acts to damp high frequencies. Scafetta and West (2005) found that the climate was 1.5 times as sensitive to 22 year cyclical forcing relative to 11 year cyclical forcing, and that the thermal inertial induced a lag of approximately 2.2 years in cyclic climate response in the temperature data.<ref name=ScafettaWest2005>{{citation | |||
| first1=Nicola | last1=Scafetta | |||
| first2=Bruce J. | last2=West | |||
| title=Estimated solar contribution to the global surface warming using the ACRIM TSI satellite composite | |||
| journal=] | |||
| volume=32 | issue=L18713 | pages=1–4 | year=2005 | |||
| doi=10.1029/2005GL023849 | |||
| url=http://www.fel.duke.edu/~scafetta/pdf/2005GL023849.pdf | |||
|format=PDF| access-date=2007-04-19 | |||
| author=Usoskin, Ilya G. | |||
}}</ref> | |||
====Predictions based on patterns==== | |||
* A simple model based on emulating harmonics by multiplying the basic 11-year cycle by powers of 2 produced results similar to ] behavior. Extrapolation suggests a gradual cooling during the next few centuries with intermittent minor warmups and a return to near ] conditions within the next 500 years. This cool period then may be followed approximately 1,500 years from now by a return to altithermal conditions similar to the previous Holocene Maximum.<ref name="Perry2000">{{citation | first1=Charles A. | last1=Perry | first2=Kenneth J. | last2=Hsu | title=Geophysical, archaeological, and historical evidence support a solar-output model for climate change | doi=10.1073/pnas.230423297 | journal=] | volume=97 | number=23 | year=2000 | pages=12433–12438 | url=http://www.pnas.org/cgi/reprint/97/23/12433.pdf |format=PDF| access-date=2007-04-17 | author=Usoskin, Ilya G. | pmid=11050181 }}</ref> | |||
* There is weak evidence for a quasi-periodic variation in the sunspot cycle amplitudes with a period of about 90 years. These characteristics indicate that the next solar cycle should have a maximum smoothed sunspot number of about 145±30 in 2010 while the following cycle should have a maximum of about 70±30 in 2023.<ref name="Hathaway2005">{{Citation | first1=David H. | last1=Hathaway | first2=Robert M. | last2=Wilson | title=What the Sunspot Record Tells Us About Space Climate | journal=] | volume=224 | number=1–2 | year=2004 | pages=5–19 | doi=10.1007/s11207-005-3996-8 | url=http://science.msfc.nasa.gov/ssl/pad/solar/papers/hathadh/HathawayWilson2004.pdf |format=PDF| access-date=2007-04-19 | author=Usoskin, Ilya G.}}</ref> | |||
* Because carbon-14 cycles are quasi periodic, Damon and Sonett (1989) predict future climate:<ref name="AZgeos462climsolar">{{cite web | title=SOLAR VARIABILITY: climatic change resulting from changes in the amount of solar energy reaching the upper atmosphere. | work=INTRODUCTION TO QUATERNARY ECOLOGY | url=http://www.geo.arizona.edu/palynology/geos462/20climsolar.html | accessdate = 2005-03-11}}</ref> | |||
{| class="wikitable" | |||
! Cycle length !! Cycle name !! Last positive <br> carbon-14 anomaly !! Next "warming" | |||
|- | |||
| 232 || --?-- || AD 1922 (cool) || AD 2038 | |||
|- | |||
| 208 || Suess || AD 1898 (cool) || AD 2002 | |||
|- | |||
| 88 || Gleisberg || AD 1986 (cool) || AD 2030 | |||
|} | |||
===Solar irradiance of Earth and its surface=== | |||
] | |||
'''Solar irradiance''', or ''']''', is the amount of sunlight which reaches the Earth. The equipment used might measure optical brightness, total radiation, or radiation in various frequencies. Historical estimates use various measurements and proxies. | |||
There are two common meanings: | |||
* the radiation reaching the upper atmosphere | |||
* the radiation reaching some point within the atmosphere, including the surface. | |||
Various gases within the atmosphere absorb some solar radiation at different wavelengths, and clouds and dust also affect it. Hence measurements above the atmosphere are needed to observe variations in solar output, within the confounding effects of changes to the atmosphere. Indeed, there is some evidence that sunshine at the Earth's surface has been decreasing in the last 50 years (see ]) possibly caused by increased atmospheric pollution, whilst over roughly the same timespan solar output has been nearly constant. | |||
====Milankovitch cycle variations==== | |||
] | |||
Some variations in insolation are not due to solar changes but rather due to the Earth moving closer or further from the Sun, or changes in the relative amount of radiation reaching regions of the Earth. These have caused variations of as much as 25% (locally; global average changes are much smaller) in solar insolation over long periods. The most recent significant event was an axial tilt of 24° during boreal summer at near the time of the '']''. | |||
{{See|Milankovitch cycles}} | |||
<br style="clear:both;" /> | |||
==Solar interactions with Earth== | |||
There are several hypotheses for how solar variations may affect Earth. Some variations, such as changes in the size of the Sun, are presently only of interest in the field of ]. | |||
===Changes in total irradiance=== | |||
* Total solar irradiance changes slowly on decadal and longer timescales. | |||
* The variation during recent activity cycles has been about 0.1%.<ref></ref> | |||
* Variations corresponding to solar changes with periods of 9–13, 18–25, and >100 years have been detected in sea-surface temperatures. | |||
* Since the Maunder Minimum, over the past 300 years there probably has been an increase of 0.1 to 0.6%, with climate models often using a 0.25% increase.<ref></ref> | |||
* One reconstruction from the ACRIM data show a 0.04% per decade trend of increased solar output between solar minima over the short span of the data set. These display a high degree of correlation with solar magnetic activity as measured by Greenwich Sunspot Number. <ref></ref> | |||
===Changes in ultraviolet irradiance=== | |||
* Ultraviolet irradiance (EUV) varies by approximately 1.5 percent from solar maxima to minima, for 200 to 300 nm UV.<ref> Science, 14 April 1989, Doi: 10.1126/science.244.4901.197, '1 percent of the sun's energy is emitted at ultraviolet wavelengths between 200 and 300 nanometers, the decrease in this radiation from 1 July 1981 to 30 June 1985 accounted for 19 percent of the decrease in the total irradiance' (19% of the 1/1366 total decrease is 1.4% decrease in UV)</ref> <!-- commented out as dubious and unsourced, please reinsert with UV wavelength ranges and cites: widely through factors of 2 to 10 during a solar cycle. --> | |||
* Energy changes in the UV wavelengths involved in production and loss of ] have atmospheric effects. | |||
** The 30 ] atmospheric pressure level has changed height in phase with solar activity during the last 4 solar cycles. | |||
** UV irradiance increase causes higher ozone production, leading to stratospheric heating and to poleward displacements in the stratospheric and tropospheric wind systems. | |||
* A proxy study estimates that UV has increased by 3% since the Maunder Minimum.{{Fact|date=October 2007}}<!-- no dispute as 3% is plausible given 1.5% UV variation in the 11-year sunspot cycle, but cite for proxy study would be nice --> | |||
===Changes in the solar wind and the Sun's magnetic flux=== | |||
* A more active solar wind and stronger magnetic field reduces the cosmic rays striking the Earth's atmosphere. | |||
* Variations in the solar wind affect the size and intensity of the ], the volume larger than the Solar System filled with solar wind particles. | |||
* Cosmogenic production of <sup>14</sup>C, <sup>10</sup>Be and <sup>36</sup>Cl show changes tied to solar activity. | |||
* Cosmic ray ionization in the upper atmosphere does change, but significant effects are not obvious. | |||
* As the solar coronal-source magnetic flux doubled during the past century, the cosmic-ray flux has decreased by about 15%. | |||
* The Sun's total magnetic flux rose by a factor of 1.41 from 1964–1996 and by a factor of 2.3 since 1901. | |||
===Effects on clouds=== | |||
* Cosmic rays have been hypothesized to affect formation of clouds through possible effects on production of cloud condensation nuclei. Observational evidence for such a relationship is inconclusive. | |||
* 1983-1994 data from the ] (ISCCP) showed that global low cloud formation was highly correlated with cosmic ray flux; subsequent to this the correlation breaks down.<ref name="DamonLaut2004"/> | |||
* The Earth's ] decreased by about 2.5% over 5 years during the most recent solar cycle, as measured by lunar "Earthshine". Similar reduction was measured by satellites during the previous cycle. | |||
* Mediterranean core study of plankton detected a solar-related 11 year cycle, and an increase 3.7 times larger between 1760 and 1950. A considerable reduction in cloud cover is proposed. | |||
* A laboratory experiment conducted by Henrik Svensmark at the Danish National Space Center was able to produce particles as a result of cosmic ray-like irradiation, though these particles do not resemble actual cloud condensation nuclei found in nature.<ref> {{cite web | title=Climate change and cosmic rays | publisher=] | access-date=2007-04-19 | url=http://www.spacecenter.dk/research/sun-climate/other/global-warming}}</ref> | |||
==Other effects due to solar variation== | |||
Interaction of solar particles, the solar magnetic field, and the Earth's magnetic field, cause variations in the particle and electromagnetic fields at the surface of the planet. Extreme solar events can affect electrical devices. Weakening of the Sun's magnetic field is believed to increase the number of interstellar ] which reach Earth's atmosphere, altering the types of particles reaching the surface. It has been speculated that a change in cosmic rays could cause an increase in certain types of clouds, affecting Earth's ]. | |||
===Geomagnetic effects=== | |||
]]] | |||
The Earth's ]e are visual displays created by interactions between the solar wind, the solar magnetosphere, the Earth's magnetic field, and the Earth's atmosphere. Variations in any of these affect aurora displays. | |||
Sudden changes can cause the intense disturbances in the Earth's magnetic fields which are called ]s. | |||
===Solar proton events=== | |||
Energetic ]s can reach Earth within 30 minutes of a major flare's peak. During such a ], Earth is showered in energetic solar particles (primarily protons) released from the flare site. Some of these particles spiral down Earth's magnetic field lines, penetrating the upper layers of our atmosphere where they produce additional ionization and may produce a significant increase in the radiation environment. | |||
===Galactic cosmic rays=== | |||
] around solar system.]] | |||
An increase in solar activity (more sunspots) is accompanied by an increase in the "]," which is an outflow of ionized particles, mostly protons and electrons, from the sun. The Earth's geomagnetic field, the solar wind, and the solar magnetic field deflect ''']s (GCR)'''. A decrease in solar activity increases the GCR penetration of the troposphere and stratosphere. GCR particles are the primary source of ionization in the troposphere above 1 km (below 1 km, ] is a dominant source of ionization in many areas). | |||
Levels of GCRs have been indirectly recorded by their influence on the production of carbon-14 and beryllium-10. The Hallstatt solar cycle length of approximately 2300 years is reflected by climatic ]. The 80–90 year solar Gleissberg cycles appear to vary in length depending upon the lengths of the concurrent 11 year solar cycles, and there also appear to be similar climate patterns occurring on this time scale. | |||
===Cloud effects=== | |||
Changes in ionization affect the abundance of aerosols that serve as the nuclei of condensation for cloud formation. As a result, ionization levels potentially affect levels of condensation, low clouds, relative humidity, and ] due to clouds. Clouds formed from greater amounts of condensation nuclei are brighter, longer lived, and likely to produce less precipitation. Changes of 3–4% in cloudiness and concurrent changes in cloud top temperatures have been correlated to the 11 and 22 year ], with increased GCR levels during "antiparallel" cycles.<ref name="Svensmark1998">{{Citation | first=Henrik | last=Svensmark | author-link=Henrik Svensmark | title=Influence of Cosmic Rays on Earth's Climate | journal=] | year=1998 | volume=81 | pages=5027–5030 | url=http://www.cosis.net/abstracts/COSPAR02/00975/COSPAR02-A-00975.pdf |format=PDF| doi=10.1103/PhysRevLett.81.5027 | access-date=2007-04-19 }}</ref> | |||
Global average cloud cover change has been found to be 1.5–2%. Several studies of GCR and cloud cover variations have found positive correlation at latitudes greater than 50° and negative correlation at lower latitudes.<ref name="Tinsley2004">{{Citation | contribution=Atmospheric Ionization and Clouds as Links Between Solar Activity and Climate | first1=Brian A. | last1=Tinsley| first2=Fangqun | last2=Yu | book=Geophysical monograph series | year=2004 | volume=141 | pages=pp. 321–339 | editor1-first=Judit M. | editor1-last=Pap | editor2-first=Peter | editor2-last=Fox | title=Solar Variability and its Effects on Climate | isbn=0-87590-406-8 | contribution-url=http://www.utdallas.edu/physics/pdf/Atmos_060302.pdf | access-date=2007-04-19 | publisher=]}}</ref> However, not all scientists accept this correlation as statistically significant, and some that do attribute it to other solar variability (e.g. UV or total irradiance variations) rather than directly to GCR changes.<ref name="Palle2004">{{cite journal | author=E. Pallé, C.J. Butler, K. O'Brien | title=The possible connection between ionization in the atmosphere by cosmic rays and low level clouds | journal=Journal of Atmospheric and Solar-Terrestrial Physics | volume=66 | issue=18 | year=2004 | pages=1779–1720| doi=10.1016/j.jastp.2004.07.041 | url=http://www.arm.ac.uk/preprints/433.pdf | access-date=2007-04-15|format=PDF}}</ref><ref name="Palle2005">{{Citation | first1=E. | last1=Pallé | title=Possible satellite perspective effects on the reported correlations between solar activity and clouds | journal=] | volume=32 | issue=3| year=2005 | pages=L03802.1–L03802.4| doi=10.1029/2004GL021167 | url=http://www.bbso.njit.edu/~epb/reprints/GRL_Palle_2004GL021167.pdf |format=PDF| access-date=2007-04-19 | author=Pallé, E. | format={{dead link|date=June 2008}} – <sup></sup> }}</ref> Difficulties in interpreting such correlations include the fact that many aspects of solar variability change at similar times, and some climate systems have delayed responses. | |||
===Carbon-14 production=== | |||
] | |||
The production of ] (radiocarbon: <sup>14</sup>C) also is related to solar activity. Carbon-14 is produced in the upper atmosphere when cosmic ray bombardment of atmospheric nitrogen (<sup>14</sup>N) induces the Nitrogen to undergo ], thus transforming into an unusual isotope of Carbon with an atomic weight of 14 rather than the more common 12. Paradoxically, increased solar activity results in a reduction of cosmic rays reaching the earth's atmosphere and reduces <sup>14</sup>C production. | |||
This is because cosmic rays are partially excluded from the Solar System by the outward sweep of magnetic fields in the solar wind. Thus the cosmic ray intensity and carbon-14 production vary inversely to the general level of solar activity.<ref>{{cite web | |||
| url= http://users.zoominternet.net/~matto/M.C.A.S/sunspot_cycle.htm | |||
| title= Astronomy: On the Sunspot Cycle | |||
|author= |last= |first= |authorlink= |coauthors= | |||
|date= |year= |month= |format= |work= |publisher= | |||
|pages= |language= |doi= |archiveurl= |archivedate= |quote= | |||
| accessdate= 2008-02-27 }} </ref> | |||
Therefore, the atmospheric <sup>14</sup>C concentration is ''lower'' during sunspot maxima and ''higher'' during sunspot minima. By measuring the captured <sup>14</sup>C in wood and counting tree rings, production of radiocarbon relative to recent wood can be measured and dated. A reconstruction of the past 10,000 years shows that the <sup>14</sup>C production was much higher during the mid-] 7,000 years ago and decreased until 1,000 years ago. In addition to variations in solar activity, the long term trends in carbon-14 production are influenced by changes in the Earth's ] and by changes in carbon cycling within the ] (particularly those associated with changes in the extent of vegetation since the last ]).<ref name="Landscheidtco2new">{{cite web | first=Theodor | last1=Landscheidt | author-link=Theodor Landscheidt |title=Variations in CO2 Growth Rate Associated with Solar Activity | date=] | accessdate=2007-04-19 | publisher=John-daly.com — website of ] | url=http://www.john-daly.com/theodor/co2new.htm }}</ref> | |||
== Global warming == | |||
{{Seealso|Global warming}} | |||
] | |||
Researchers have correlated solar variation with changes in the ]'s average temperature and ] — sometimes finding an effect, and sometimes not. <ref></ref> | |||
Researchers who have found an effect include Scafetta & West, <ref></ref> ], ] and Douglas & Clader <ref></ref>. | |||
The ] questions the magnitude of long-term (last hundred or more years) solar variation in section 6.11 of the ]<ref name="grida fig6-6">{{Citation | editor1-first=J.T. | editor1-last=Houghton | editor1-link=John T. Houghton | editor2-first=Y. | editor2-last=Ding | editor3-first=D.J. | editor3-last=Griggs | editor4-first=M. | editor4-last=Noguer | editor5-first=P.J. | editor5-last=van der Linden | editor6-first=X.| editor6-last=Dai | editor7-first=K. | editor7-last=Maskell | editor8-first=C.A. | editor8-last=Johnson | title=Climate Change 2001: Working Group I: The Scientific Basis | url=http://www.grida.no/climate/ipcc_tar/wg1/index.htm | year=2001 | publisher=] | |||
| chapter=6.11 Total Solar Irradiance – Figure 6.6: Global, annual mean radiative forcings (1750 to present) | |||
| chapter-url=http://www.grida.no/climate/ipcc_tar/wg1/fig6-6.htm | access-date=2007-04-15 }}</ref> | |||
and show various results including Lean et al. (1995).<ref name="www.grida.no.98">{{Citation | editor1-first=J.T. | editor1-last=Houghton | editor1-link=John T. Houghton | editor2-first=Y. | editor2-last=Ding | editor3-first=D.J. | editor3-last=Griggs | editor4-first=M. | editor4-last=Noguer | editor5-first=P.J. | editor5-last=van der Linden | editor6-first=X.| editor6-last=Dai | editor7-first=K. | editor7-last=Maskell | editor8-first=C.A. | editor8-last=Johnson | title=Climate Change 2001: Working Group I: The Scientific Basis | url=http://www.grida.no/climate/ipcc_tar/wg1/index.htm | year=2001 | publisher=] | |||
| chapter=6.11 Total Solar Irradiance – Figure 6.5: Reconstructions of total solar irradiance (TSI) by Lean et al. | |||
| chapter-url=http://www.grida.no/climate/ipcc_tar/wg1/fig6-5.htm | access-date=2007-04-15 | |||
}}</ref> | |||
However the Lean 1995 value may be too high: more recently Lean et al (GRL 2002,<ref name="www.agu.org.99">{{Citation | first1=J.L. | last1=Lean | first2=Y.-M | last2=Wang | first3=N.R | last3=Sheeley Jr. | title="The effect of increasing solar activity on the Sun’s total and open magnetic flux during multiple cycles: Implications for solar forcing of climate" | year=2002 | pages=77–1~77–4 | volume=29 | number=24 | journal=] | doi=0.1029/2002GL015880 | id=CiteID:2224 | url=http://www.agu.org/pubs/crossref/2002.../2002GL015880.shtml | access-date=2007-04-15 | doi_brokendate=2008-06-25}}</ref>) say: | |||
: ''Our simulation suggests that secular changes in terrestrial proxies of solar activity (such as the 14C and 10Be cosmogenic isotopes and the aa geomagnetic index) can occur in the absence of long-term (i.e., secular) solar irradiance changes. ...this suggests that total solar irradiance may also lack significant secular trends. ...Solar radiative forcing of climate is reduced by a factor of 5 when the background component is omitted from historical reconstructions of total solar irradiance ...This suggest that general circulation model (GCM) simulations of twentieth century warming may overestimate the role of solar irradiance variability. ...There is, however, growing empirical evidence for the Sun's role in climate change on multiple time scales including the 11-year cycle ...Climate response to solar variability may involve amplification of climate modes which the GCMs do not typically include. ...In this way, long-term climate change may appear to track the amplitude of the solar activity cycles because the stochastic response increases with the cycle amplitude, not because there is an actual secular irradiance change.'' | |||
More recently, a study and review of existing literature published in Nature in September 2006 suggests that the evidence is solidly on the side of solar brightness having relatively little effect on global climate, and downplays the likelihood of significant shifts in solar output over long periods of time.<ref name="UCARbrightness">{{cite pressrelease | title=Changes In Solar Brightness Too Weak To Explain Global Warming | publisher=] | url=http://www.ucar.edu/news/releases/2006/brightness.shtml |date=], ] | access-date=2007-04-18 }}</ref><ref>{{Citation | first1=P. | last1=Foukal | first2=C. | last2=Fröhlich | first3=H. | last3=Spruit | first4=T. M. L. | last4=Wigley | title=Variations in solar luminosity and their effect on the Earth’s climate | url=http://www.mpa-garching.mpg.de/mpa/publications/preprints/pp2006/MPA2001.pdf |format=PDF| doi=10.1038/nature05072 | journal=] | volume=443 | issue=7108 | year=2006 | accessdate=2007-04-18 | author=Foukal, P. | pages=161 }}</ref> | |||
Lockwood and Fröhlich, 2007, find that there "is considerable evidence for solar influence on the Earth’s pre-industrial climate and the Sun may well have been a factor in post-industrial climate change in the first half of the last century. Here we show that over the past 20 years, all the trends in the Sun that could have had an influence on the Earth’s climate have been in the opposite direction to that required to explain the observed rise in global mean temperatures."<ref>{{cite journal | |||
| last = Lockwood | |||
| first = Mike | |||
| authorlink = | |||
| coauthors = Claus Fröhlich | |||
| title = Recent oppositely directed trends in solar climate forcings and the global mean surface air temperature | |||
| journal = Proceedings of the Royal Society A | |||
| volume =463 | |||
| issue = | |||
| pages = 2447 | |||
| date = | |||
| quote = Our results show that the observed rapid rise in global mean temperatures seen after 1985 cannot be ascribed to solar variability, | |||
whichever of the mechanisms is invoked and no matter how much the solar variation is amplified. | |||
| url = http://www.pubs.royalsoc.ac.uk/media/proceedings_a/rspa20071880.pdf | |||
| doi = 10.1098/rspa.2007.1880 | |||
| id = | |||
| accessdate = 2007-07-21 | |||
|format=PDF}}</ref> | |||
Scafetta and West find solid evidence to the contrary, however, claiming solar variability is a major, if not dominant climate forcing. They argue that a 'realistic climate scenario is the one described by a large preindustrial secular variability (as the one shown by the paleoclimate temperature reconstruction by Moberg et al.)<ref> </ref>) with the total solar irradiance experiencing low secular variability (as the one shown by Wang et al.)<ref> )</ref>. Under this scenario the Sun might have contributed up to approximately 50% (or more if the ACRIM total solar irradiance satellite composite is implemented<ref></ref>) of the observed global warming since 1900. <ref></ref> | |||
] | |||
===Solar variation theory=== | |||
There have been proposals that variations in solar output explain past ] and contribute to ]. The most accepted influence of solar variation on the climate is through direct ], but this is too small to explain significant temperature change. Various ] have been proposed to explain the apparent solar correlation with temperatures that some assert appear to be stronger than can be explained by direct irradiation and the first order positive feedbacks to increases in solar activity. The meteorological community has responded with skepticism, in part because theories of this nature have come and gone over the course of the 20th century.<ref name="AIPsolar"/> | |||
], the director of the ] in ], Germany said: | |||
:The sun has been at its strongest over the past 60 years and may now be affecting global temperatures... the brighter sun and higher levels of so-called "greenhouse gases" both contributed to the change in the Earth's temperature, but it was impossible to say which had the greater impact.<ref name="www.washtimes.com.102">{{cite news | first=Michael | last=Leidig | publisher=] | date=] | accessdate=2007-04-18 | title=Hotter-burning sun warming the planet | url=http://www.washtimes.com/world/20040718-115714-6334r.htm }}</ref> | |||
Nevertheless, Solanki agrees with the scientific consensus that the marked upswing in temperatures since about 1980 is attributable to human activity. | |||
:"Just how large this role is, must still be investigated, since, according to our latest knowledge on the variations of the solar magnetic field, the significant increase in the Earth’s temperature since 1980 is indeed to be ascribed to the greenhouse effect caused by carbon dioxide."<ref name="www.mpg.de/english/">{{cite pressrelease | title=How Strongly Does the Sun Influence the Global Climate? – Studies at the Max Planck Institute for Solar System Research reveal: solar activity affects the climate but plays only a minor role in the current global warming | publisher=] | date=2004-08-02 | accessdate=2007-04-16 | url=http://www.mpg.de/english/illustrationsDocumentation/documentation/pressReleases/2004/pressRelease20040802/ }}</ref> | |||
The theories have usually represented one of three types: | |||
* Solar irradiance changes directly affecting the climate. This is generally considered unlikely, as the amplitudes of the variations in solar irradiance are much too small to have the observed relation absent some amplification process. | |||
* Variations in the ultraviolet component having an effect. The UV component varies by more than the total, so if UV were for some reason having a disproportionate effect, this might explain a larger solar signal in climate. | |||
* Effects mediated by changes in cosmic rays (which are affected by the solar wind, which is affected by the solar output) such as changes in cloud cover. | |||
] | |||
Although correlations often can be found, the mechanism behind these correlations is a matter of speculation. Many of these speculative accounts have fared badly over time, and in a paper "Solar activity and terrestrial climate: an analysis of some purported correlations" (J. Atmos. and Solar-Terr. Phy., 2003 p801–812) Peter Laut demonstrates problems with some of the most popular, notably those by Svensmark and by Lassen (below). Damon and Laut report in Eos<ref name="DamonLaut2004">{{cite journal | title=Pattern of Strange Errors Plagues Solar Activity and Terrestrial Climate Data | url=http://stephenschneider.stanford.edu/Publications/PDF_Papers/DamonLaut2004.pdf | accessdate=October 5 | accessyear=2005| journal=Eos| volume=85| issue=39| month=28 September| year=2004| pages=370–374| first=Paul E.| last=Damon| coauthors=Paul Laut | doi=10.1029/2004EO390005|format=PDF}}</ref> that ''the apparent strong correlations displayed on these graphs have been obtained by incorrect handling of the physical data. The graphs are still widely referred to in the literature, and their misleading character has not yet been generally recognized.'' | |||
In 1991, Knud Lassen of the Danish Meteorological Institute in Copenhagen and his colleague Eigil Friis-Christensen found a strong correlation between the length of the solar cycle and temperature changes throughout the northern hemisphere. Initially, they used sunspot and temperature measurements from 1861 to 1989, but later found that climate records dating back four centuries supported their findings. This relationship appeared to account for nearly 80 per cent of the measured temperature changes over this period (see graph<ref name="refbot.104">{{cite web | title=http://solar-center.stanford.edu/images/solactivity.jpg | url=http://solar-center.stanford.edu/images/solactivity.jpg | accessdate = 2005-10-05}}</ref>). Damon and Laut, however, show that when the graphs are corrected for filtering errors, ''the sensational agreement with the recent global warming, which drew worldwide attention, has totally disappeared. Nevertheless, the authors and other researchers keep presenting the old misleading graph''.<ref name="DamonLaut2004"/> Note that the prior link to "graph" is one such example of this. | |||
], an astronomer at the Harvard-Smithsonian Center for Astrophysics, has been among the supporters of the theory that changes in the sun "can account for major climate changes on Earth for the past 300 years, including part of the recent surge of global warming."<ref name="www.news.harvard.edu.106">{{cite web | first=William J. | last=Cromie | title=Brightening Sun is Warming Earth – May account for major part of global warming | publisher=Harvard University Gazette | date=] | accessdate=2007-04-19 | url=http://www.news.harvard.edu/gazette/1997/11.06/BrighteningSuni.html}}</ref> | |||
On ] ], however, ''New Scientist'' magazine reported that Lassen and astrophysicist ] had updated Lassen's 1991 research and found that while the solar cycle still accounts for about half the temperature rise since 1900, it fails to explain a rise of 0.4 °C since 1980. "The curves diverge after 1980," Thejll said, "and it's a startlingly large deviation. Something else is acting on the climate.... It has the fingerprints of the greenhouse effect."<ref name="archive.newscientist.com.107">{{cite web | first=Robert | last=Adler | title=Don't blame the Sun | publisher=] | number=2237 | url=http://www.newscientist.com/article.ns?id=mg16622370.800 | date=] | accessdate=2007-04-19}}</ref> | |||
Later that same year, Peter Stott and other researchers at the Hadley Centre in the United Kingdom published a paper in which they reported on the most comprehensive model simulations to date of the climate of the 20th century. Their study looked at both "]" (solar variations and volcanic emissions) as well as "]" (greenhouse gases and sulphate aerosols). They found that "solar effects may have contributed significantly to the warming in the first half of the century although this result is dependent on the reconstruction of total solar irradiance that is used. In the latter half of the century, we find that anthropogenic increases in greenhouses gases are largely responsible for the observed warming, balanced by some cooling due to anthropogenic sulphate aerosols, with no evidence for significant solar effects." Stott's team found that combining all of these factors enabled them to closely simulate global temperature changes throughout the 20th century. They predicted that continued greenhouse gas emissions would cause additional future temperature increases "at a rate similar to that observed in recent decades". It should be noted that their solar forcing included "spectrally-resolved changes in solar irradiance" and not the indirect effects mediated through cosmic rays for which there is still no accepted mechanism — these ideas are still being fleshed out.<ref name="www.sciencemag.org.108">{{Citation | first1=K.S. | last1=Carslaw | first2=R. G. | last2=Harrison | first3=J. | last3=Kirkby | title=Cosmic Rays, Clouds, and Climate | journal=] | volume=298 | number=5599 | pages=1732–1737 | year=2002 | doi=10.1126/science.1076964 | url=http://www.seas.harvard.edu/climate/pdf/carslaw-2002.pdf |format=PDF| access-date=2007-04-18 | author=Carslaw, K. S. | pmid=12459578 }} | |||
</ref> In addition, the study notes "uncertainties in historical forcing" — in other words, past natural forcing may still be having a delayed warming effect, most likely due to the oceans.<ref name="refbot.109">{{cite journal | author=Stott, Peter A.; ''et al.'' | title=External Control of 20th Century Temperature by Natural and Anthropogenic Forcings | journal=Science | year=2000 | volume=290 | pages=2133–2137 | doi=10.1126/science.290.5499.2133 | pmid=11118145 }}</ref> A graphical representation<ref name="www.grida.no.110">{{cite web | title=graphical representation | url=http://www.grida.no/climate/ipcc_tar/wg1/fig12-7.htm | accessdate = 2005-10-05}}</ref> of the relationship between natural and anthropogenic factors contributing to climate change appears in "Climate Change 2001: The Scientific Basis", a report by the ] (IPCC).<ref name="www.grida.no.111">{{cite web | title=Climate Change 2001: The Scientific Basis | url=http://www.grida.no/climate/ipcc_tar/wg1/index.htm | accessdate = 2005-10-05}}</ref> | |||
Stott's 2003 work mentioned in the model section above largely revised his assessment, and found a significant solar contribution to recent warming, although still smaller (between 16 and 36%) than that of the greenhouse gases.<ref name="Stott2003">{{Citation | first1=Peter A. | last1=Stott | first2=Gareth S. | last2=Jones | first3=John F. B. | last3=Mitchell | title=Do Models Underestimate the Solar Contribution to Recent Climate Change? | year=2003 | journal=] | volume=16 | issue=24 | pages=4079–4093 | doi=10.1175/1520-0442(2003)016<4079:DMUTSC>2.0.CO;2 | access-date=2007-04-16 | format=PDF | url=http://climate.envsci.rutgers.edu/pdf/StottEtAl.pdf | author=Stott, Peter A.}}</ref> | |||
=== Historical perspective === | |||
Physicist and historian ] in ''The Discovery of Global Warming'' (2003) writes: | |||
<blockquote>The study of cycles was generally popular through the first half of the century. Governments had collected a lot of weather data to play with and inevitably people found correlations between sun spot cycles and select weather patterns. If rainfall in England didn't fit the cycle, maybe storminess in New England would. Respected scientists and enthusiastic amateurs insisted they had found patterns reliable enough to make predictions. Sooner or later though every prediction failed. An example was a highly credible forecast of a dry spell in Africa during the sunspot minimum of the early 1930s. When the period turned out to be wet, a meteorologist later recalled "the subject of sunspots and weather relationships fell into dispute, especially among British meteorologists who witnessed the discomfiture of some of their most respected superiors." Even in the 1960s he said, "For a young researcher to entertain any statement of sun-weather relationships was to brand oneself a crank."<ref>{{citation | first=Spencer | last=Weart | author-link=Spencer Weart | title=The Discovery of Global Warming | chapter=Changing Sun, Changing Climate? | publisher=Harvard University Press | year=2003 | isbn=0674011570 | url=http://www.aip.org/history/climate/ | chapter-url=http://www.aip.org/history/climate/solar.htm | access-date=2008-04-17 }}</ref>)</blockquote> | |||
==See also== | |||
{{col-begin}} | |||
{{col-break}} | |||
* ] | |||
* ] | |||
* ] | |||
{{col-break}} | |||
* ] | |||
* ] | |||
{{col-end}} | |||
==References==<!-- Advances in Space Research 37 (2006) 1629–1634 --> | |||
===General references=== | |||
*{{cite journal |last=Abbot |first=C. G. |authorlink= |coauthors= |year=1966 |month= |title=Solar Variation, A Weather Element |journal=] |volume=56 |issue=6 |pages=1627–1634 |id= |url=http://www.pnas.org/cgi/reprint/56/6/1627.pdf |accessdate= |quote=|doi=10.1073/pnas.56.6.1627 |format=PDF}} | |||
*{{cite journal |last=Willson |first=Richard C.|authorlink= |coauthors=H.S. Hudson|year=1991 |month= |title=The Sun's luminosity over a complete solar cycle |journal=Nature |volume=351 |issue= |pages=42 - 44 | doi=10.1038/351042a0 |id= |url=http://www.nature.com/nature/journal/v351/n6321/abs/351042a0.html |accessdate= |quote=|}} | |||
*{{cite web | title=The Sun and Climate | work=U.S. Geological Survey Fact Sheet 0095-00 | url=http://pubs.usgs.gov/fs/fs-0095-00/ | accessdate = 2005-02-21}} | |||
*{{cite web | title=The Sun's role in Climate Changes | work=Proc. of The International Conference on Global Warming and The Next Ice Age, 19–24 August, 2001, Halifax, Nova Scotia. | url=http://zeus.nascom.nasa.gov/~pbrekke/articles/halifax_brekke.pdf | accessdate = 2005-02-21|format=PDF}} | |||
*{{cite journal |last=White |first=Warren B. |authorlink= |coauthors=Lean, Judith; Cayan, Daniel R.; Dettinger, Michael D. |year=1997 |month= |title=Response of global upper ocean temperature to changing solar irradiance |journal=] |volume=102 |issue=C2 |pages=3255–3266 |id= |url=http://www.agu.org/pubs/crossref/1997/96JC03549.shtml |accessdate= |quote=|doi=10.1029/96JC03549 }} | |||
*{{cite journal |last=Foukal |first=Peter |authorlink= |coauthors=''et al.'' |year=1977 |month= |title=The effects of sunspots and faculae on the solar constant |journal=Astrophysical Journal |volume=215 |issue= |pages=952 |id= |url= |accessdate= |quote=|doi=10.1086/155431 }} | |||
*{{cite journal |last=Dziembowski |first=W.A. |authorlink= |coauthors=P.R. Goode, and J. Schou |year=2001 |month= |title=Does the sun shrink with increasing magnetic activity? |journal=Astrophysical Journal |volume=553 |issue= |pages=897–904 |doi=10.1086/320976 |url= |accessdate= |quote= }} | |||
===Footnotes=== | |||
<!--See http://en.wikipedia.org/Wikipedia:Footnotes for an explanation of how to generate footnotes using the <ref(erences/)> tags--> | |||
{{reflist}} | |||
* {{note|www.grida.no.95}} {{cite web | title=Climate Change 2001: The Scientific Basis | url=http://www.grida.no/climate/ipcc_tar/wg1/122.htm | accessdate = 2005-10-05}} | |||
* {{note|www.envirotruth.org.94}} {{Citation | first=Nir J. | last=Shaviv | author1-link=Nir Shaviv | first2=Ján | last2=Veizer | author2-link=Jan Veizer | title=Celestial driver of Phanerozoic climate? | volume=13 | issue=7 | year=2003 | pages=4–10 | journal=] Today | url=http://www.gsajournals.org/archive/1052-5173/13/7/pdf/i1052-5173-13-7-4.pdf |format=PDF| doi=10.1130/1052-5173(2003)013<0004:CDOPC>2.0.CO;2 | access-date=2007-04-19 }} | |||
* {{note|www.soest.hawaii.edu.96}} {{cite web | title=http://www.soest.hawaii.edu/GG/FACULTY/POPP/Rahmstorf%20et%20al.%202004%20EOS.pdf | url=http://www.soest.hawaii.edu/GG/FACULTY/POPP/Rahmstorf%20et%20al.%202004%20EOS.pdf | accessdate = 2005-10-05|format=PDF}} | |||
==External links== | |||
* Gerrit Lohmann, Norel Rimbu, Mihai Dima (2004). . International Journal of Climatology 24(8), 1045–1056 — Abstract: http://www.palmod.uni-bremen.de/~gerrit/abstractSolar.html | |||
* Solar Climatic Effects (Recent Influence) — Summary. ]. ] ]. http://www.co2science.org/subject/s/summaries/solarrecin.htm | |||
* NOAA / NESDIS / NGDC (2002) NOAA CD-ROM NGDC-05/01. This CD-ROM contains over 100 solar-terrestrial and related global data bases covering the period through April 1990. http://www.ngdc.noaa.gov/stp/CDROM/solar_variability.html | |||
* S. K Solanski, M. Fligge (2001) ESA SP-463, ESA Publications Division. http://www.astro.phys.ethz.ch/papers/fligge/solspa_2.pdf | |||
* S.K. Solanki, M. Fligge (2000) Space Science Review 94, 127–138 http://www.astro.phys.ethz.ch/papers/fligge/solfli_rev.pdf | |||
* George C. Reid (1995) Aeronomy Laboratory, NOAA/ERL, Boulder, Colorado. U.S. National Report to IUGG, 1991–1994 Rev. Geophys. Vol. 33 Suppl. http://www.agu.org/revgeophys/reid00/reid00.html | |||
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