{"status":"ok","message-type":"work","message-version":"1.0.0","message":{"indexed":{"date-parts":[[2026,7,25]],"date-time":"2026-07-25T04:59:18Z","timestamp":1784955558715,"version":"3.55.0"},"reference-count":23,"publisher":"American Geophysical Union (AGU)","issue":"D7","license":[{"start":{"date-parts":[[2012,9,21]],"date-time":"2012-09-21T00:00:00Z","timestamp":1348185600000},"content-version":"vor","delay-in-days":9590,"URL":"http:\/\/onlinelibrary.wiley.com\/termsAndConditions#vor"}],"content-domain":{"domain":[],"crossmark-restriction":false},"short-container-title":["J. Geophys. Res."],"published-print":{"date-parts":[[1986,6,20]]},"abstract":"<jats:p>In the second of two papers interpreting atmospheric CO<jats:sub>2<\/jats:sub> observations obtained during the First Global Geophysical Experiment (FGGE) Hawaii to Tahiti Shuttle expedition of 1979\u20131980, we consider features of the atmospheric CO<jats:sub>2<\/jats:sub> cycle revealed by the mean annual component of the CO<jats:sub>2<\/jats:sub> concentration field. For this purpose the FGGE data, after decomposition into seasonal, secular, and north\u2010south varying components, were extended to 71\u00b0N and to the south pole by included smoothed mean annual data based on CO<jats:sub>2<\/jats:sub> observations at seven land stations. The resulting mean annual north\u2010south profile was referred to a datum of January 1, 1980. An additional profile for January 1, 1962 was derived from observations at five land stations, at an Arctic ice floe station, and from ships during the period 1960\u20131963. Both profiles have been examined using a one\u2010dimensional meridional diffusive transport model of the atmospheric circulation in which the latitudinal dependence of the eddy diffusion coefficient between 14.5\u00b0N and 14.5\u00b0S has been determined from seasonal variations in atmospheric CO<jats:sub>2<\/jats:sub>, and its mean value estimated from halocarbon and <jats:sup>85<\/jats:sup>Kr data. The difference between the two CO<jats:sub>2<\/jats:sub> concentration profiles is explained as being due almost entirely to the combustion of fossil fuels, which caused 2.7 \u00d7 10<jats:sup>15<\/jats:sup> g more carbon to be injected into the air in 1980 than in 1962, predominantly north of 14.5\u00b0N. A residual profile was obtained by subtracting the predicted effect of the injection of fossil fuel CO<jats:sub>2<\/jats:sub> from the 1980 profile. This residual profile has a peak concentration near the equator which, according to the model, is a result of the release of 5.0 \u00d7 10<jats:sup>15<\/jats:sup> g yr<jats:sup>\u22121<\/jats:sup> of carbon to the atmosphere between 14.5\u00b0N and 14.5\u00b0S, balanced by an equal removal from the atmosphere poleward of these latitudes. The source\u2010sink couple inferred to produce this CO<jats:sub>2<\/jats:sub> exchange is consistent with the distribution of CO<jats:sub>2<\/jats:sub> partial pressure in the equatorial ocean surface water, as observed on the FGGE Shuttle Expedition, provided that the air\u2010sea exchange rate of CO<jats:sub>2<\/jats:sub> there is 30 mol m<jats:sup>\u22122<\/jats:sup> yr<jats:sup>\u22121<\/jats:sup>. This exaggerated rate probably reflects the lack of vertical resolution in the model, such that the CO<jats:sub>2<\/jats:sub> concentration near the sea surface is assumed to apply to the entire air column. The residual profile also shows a higher average concentration in the southern hemisphere than in the northern. The cause of this difference, of the order of 1 ppm, could not be resolved by the model owing to lack of information on the character of sources and sinks and transport behavior poleward of 14.5\u00b0N and 14.5\u00b0S; it may be owing to either oceanic or land biospheric CO<jats:sub>2<\/jats:sub> exchange with the air or even to time dependent atmospheric transport.<\/jats:p>","DOI":"10.1029\/jd091id07p07782","type":"journal-article","created":{"date-parts":[[2008,2,6]],"date-time":"2008-02-06T19:18:54Z","timestamp":1202325534000},"page":"7782-7796","source":"Crossref","is-referenced-by-count":56,"title":["Meridional eddy diffusion model of the transport of atmospheric carbon dioxide: 2. Mean annual carbon cycle"],"prefix":"10.1029","volume":"91","author":[{"given":"Charles D.","family":"Keeling","sequence":"first","affiliation":[],"role":[{"vocabulary":"crossref","role":"author"}]},{"given":"Martin","family":"Heimann","sequence":"additional","affiliation":[],"role":[{"vocabulary":"crossref","role":"author"}]}],"member":"13","published-online":{"date-parts":[[2012,9,21]]},"reference":[{"key":"e_1_2_1_2_1","first-page":"103","volume-title":"SCOPE 16: Carbon Cycle Modelling","author":"Bacastow R. B.","year":"1981"},{"key":"e_1_2_1_3_1","doi-asserted-by":"publisher","DOI":"10.1029\/JD090iD06p10529"},{"key":"e_1_2_1_4_1","doi-asserted-by":"publisher","DOI":"10.1029\/JZ068i013p03899"},{"key":"e_1_2_1_5_1","first-page":"1","volume-title":"SCOPE 16: Carbon Cycle Modelling","author":"Bolin B.","year":"1981"},{"key":"e_1_2_1_6_1","doi-asserted-by":"publisher","DOI":"10.1145\/360924.360971"},{"key":"e_1_2_1_7_1","doi-asserted-by":"crossref","first-page":"57","DOI":"10.1016\/S0065-2687(08)60571-3","article-title":"Studies of interhemispheric exchange in the troposphere by a diffusion model","volume":"18","author":"Czeplak G.","year":"1974","journal-title":"Adv. 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C. 1969."},{"key":"e_1_2_1_19_1","doi-asserted-by":"publisher","DOI":"10.1111\/j.1600-0889.1984.tb00245.x"},{"key":"e_1_2_1_20_1","doi-asserted-by":"publisher","DOI":"10.1111\/j.1600-0889.1985.tb00073.x"},{"key":"e_1_2_1_21_1","unstructured":"Oort A. H. Global atmospheric statistics 1958\u20131973 NOAA Prof. Pap. 14 180 Natl. Oceanic and Atmos. Admin. Boulder Colo. 1983."},{"key":"e_1_2_1_22_1","doi-asserted-by":"publisher","DOI":"10.1029\/JC085iC08p04457"},{"key":"e_1_2_1_23_1","volume-title":"Handbook of Marine Science","author":"Smith F. G. 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