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<article language="en">
	<journal>
		<journal_title>Climate of the Past</journal_title>
		<journal_url>www.clim-past.net</journal_url>
		<issn>1814-9324</issn>
		<eissn>1814-9332</eissn>
		<volume_number>3</volume_number>
		<issue_number>3</issue_number>
		<publication_year>2007</publication_year>
	</journal>
	<doi>10.5194/cp-3-387-2007</doi>
	<article_url>http://www.clim-past.net/3/387/2007/</article_url>
	<abstract_html>http://www.clim-past.net/3/387/2007/cp-3-387-2007.html</abstract_html>
	<fulltext_pdf>http://www.clim-past.net/3/387/2007/cp-3-387-2007.pdf</fulltext_pdf>
	<start_page>387</start_page>
	<end_page>396</end_page>
	<publication_date>2007-07-10</publication_date>
	<article_title content_type="html">Application of sediment core modelling to interpreting the glacial-interglacial record of Southern Ocean silica cycling</article_title>
	<authors>
		<author numeration="1" affiliations="1">
			<name>A. Ridgwell</name>
			<email>andy@seao2.org</email>
		</author>
	</authors>
	<affiliations>
		<affiliation numeration="1" content_type="html">School of Geographical Sciences, University of Bristol, Bristol, UK</affiliation>
	</affiliations>
	<abstract content_type="html">Sediments from the Southern Ocean reveal a meridional divide in
biogeochemical cycling response to the glacial-interglacial cycles of the
late Neogene. South of the present-day position of the Antarctic Polar Front
in the Atlantic sector of the Southern Ocean, biogenic opal is generally
much more abundant in sediments during interglacials compared to glacials.
To the north, an anti-phased relationship is observed, with maximum opal
abundance instead occurring during glacials. This antagonistic response of
sedimentary properties provides an important model validation target for
testing hypotheses of glacial-interglacial change against, particularly for
understanding the causes of the concurrent variability in atmospheric
CO&lt;sub&gt;2&lt;/sub&gt;. Here, I illustrate a time-dependent modelling approach to helping
understand climates of the past by means of the mechanistic simulation of
marine sediment core records. I find that a close match between
model-predicted and observed down-core changes in sedimentary opal content
can be achieved when changes in seasonal sea-ice extent are imposed, whereas
the predicted sedimentary response to iron fertilization on its own is not
consistent with sedimentary observations. The results of this sediment
record model-data comparison supports previous inferences that the changing
cryosphere is the primary driver of the striking features exhibited by the
paleoceanographic record of this region.</abstract>
	<references>
		<reference numeration="1" content_type="text"> Abelmann A., Gersonde, R., Cortese, G., Kuhn, G., and Smetacek, V.: Extensive phytoplankton blooms in the Atlantic sector of the glacial Southern Ocean, Paleoceanography, 21, 1013, doi:10.1029/2005PA001199, 2006. </reference>
		<reference numeration="2" content_type="text"> Anderson, R. F., Kumar, N., Mortlock, R. A., Froelich, P. N., Kubik, P., et al.: Late-Quaternary changes in productivity of the Southern Ocean, J. Mar. Syst., 17, 497&amp;ndash;514, 1998. </reference>
		<reference numeration="3" content_type="text"> Anderson, R. F., Chase, Z., Fleisher, M. Q., and Sachs, J.: The Southern Ocean&apos;s biologial pump during the Last Glacial Maximum, Deep-Sea Res. Pt. II, 49, 1909&amp;ndash;1938, 2002. </reference>
		<reference numeration="4" content_type="text"> Archer, D., Winguth, A., Lea, D., and Mahowald, N.: What caused the glacial/interglacial atmospheric $p$CO&lt;sub&gt;2&lt;/sub&gt; cycles?, Rev. Geophys., 38, 159&amp;ndash;189, 2000. </reference>
		<reference numeration="5" content_type="text"> Bareille, G., Grousset, F. E., Labracherie, M., Labeyrie, L. D., and Petit, J. R.: Origin of detrital fluxes in the southeast Indian Ocean during the last climatic cycle, Paleoceanography, 9, 799&amp;ndash;819, 1994. </reference>
		<reference numeration="6" content_type="text"> Bassinot, F. C., Labeyrie, L. D., Vincent, E., Quidelleur, X., Shackleton, N. J., and Lancelot, Y.: The astronomical theory of climate and the age of the Brunhes-Matuyama magnetic reversal, Earth Planet. Sci. Lett., 126, 91&amp;ndash;108, 1994. </reference>
		<reference numeration="7" content_type="text"> Bertrand, P., Shimmield, G., Martinez, P., Grousset, F., Jorissen, F., et al.: The glacial ocean productivity hypothesis &amp;ndash; The important of regional temporal and spatial studies, Mar. Geol., 130, 1&amp;ndash;9, 1996. </reference>
		<reference numeration="8" content_type="text"> Bopp, L., Kohfeld, K. E., Le Quere, C., and Aumont, O.: Dust impact on marine biota and atmospheric CO&lt;sub&gt;2&lt;/sub&gt; during glacial periods, Paleoceanography, 18, 1046, doi:10.1029/2002PA000810, 2003. </reference>
		<reference numeration="9" content_type="text"> Brzezinski, M. A., Pride, C. J., Franck, V. M., Sigman, D. M., Sarmiento, J. L., et al.: A switch from Si(OH)&lt;sub&gt;4&lt;/sub&gt; to NO$_3^-$ depletion in the glacial Southern Ocean, Geophys. Res. Lett., 29, 1564, doi:10.1029/2001GL014349, 2002. </reference>
		<reference numeration="10" content_type="text"> Broecker, W. S. and Henderson, G. M.: The sequence of events surrounding Termination II and their implications for the cause of glacial-interglacial CO&lt;sub&gt;2&lt;/sub&gt; changes, Paleoceanography, 13, 352&amp;ndash;364, 1998. </reference>
		<reference numeration="11" content_type="text"> Charles, C. D., Froelich, P. N., Zibello, M. A., Mortlock, R. A., and Morley, J. J.: Biogenic opal in Southern Ocean sediments over the last 450,000 years: Implications for surface water chemistry and circulation, Paleoceanography, 6, 697&amp;ndash;728, 1991. </reference>
		<reference numeration="12" content_type="text"> Chase, Z., Anderson, R. F., Fleisher, M. Q., and Kubik, P. W.: Accumulation of biogenic and lithogenic material in the Pacific sector of the Southern Ocean during the past 40,000 years, Deep-Sea Res. Pt. II, 50, 799&amp;ndash;832, 2003. </reference>
		<reference numeration="13" content_type="text"> CLIMAP project members: The surface of the ice-age Earth, Science, 191, 1131&amp;ndash;1137, 1976. </reference>
		<reference numeration="14" content_type="text"> Crosta, X., Pichon, J. J., and Burckle, L. H.: Reappraisal of Antarctic seasonal sea-ice at the Last Glacial Maximum, Geophys. Res. Lett., 25, 2703&amp;ndash;2706, 1998. </reference>
		<reference numeration="15" content_type="text"> Crosta, X. and Shemesh, A.: Reconciling down core anticorrelation of diatom carbon and nitrogen isotopic ratios from the Southern Ocean, Paleoceanography, 17, 1010, doi:10.1029/2000PA000565, 2002. </reference>
		<reference numeration="16" content_type="text"> De La Rocha, C. L., Brzezinski, M. A., DeNiro, M. J., and Shemesh, A.: Silicon-isotope composition of diatoms as an indicator of past oceanic change, Nature, 395, 680&amp;ndash;683, 1999. </reference>
		<reference numeration="17" content_type="text"> Dezileau L., Bareille, G., and Reyss, J. L.: The $^231$Pa/$^230$Th ratio as a proxy for past changes in opal fluxes in the Indian sector of the Southern Ocean, Mar. Chem., 81, 105&amp;ndash;117, 2003. </reference>
		<reference numeration="18" content_type="text"> Elderfield, H. and Rickaby, R. E. M.: Oceanic Cd/P ratio and nutrient utilization in the glacial Southern Ocean, Nature, 405, 305&amp;ndash;310, 2000. </reference>
		<reference numeration="19" content_type="text"> Francois, R., Altabet, M. A., Yu, E.-F., Sigman, D. M., Bacon, M. P., et al.: Contribution of Southern Ocean surface-water stratification to low atmospheric CO&lt;sub&gt;2&lt;/sub&gt; concentrations during the last glacial period, Nature, 389, 929&amp;ndash;935, 1997. </reference>
		<reference numeration="20" content_type="text"> Gaspari, V., Barbante, C., Cozzi, G., Cescon, P., Boutron, C. F., et al.: Atmospheric iron fluxes over the last deglaciation: Climatic implications, Geophys. Res. Lett., 33, L03704, doi:10.1029/2005GL024352, 2006. </reference>
		<reference numeration="21" content_type="text"> Gersonde, R., Crosta, X., Abelmann, A., and Armand, L.: Sea-surface temperature and sea ice distribution of the Southern Ocean at the EPILOG Last Glacial Maximum &amp;ndash; a circum-Antarctic view based on siliceous microfossil records, Quat. Sci. Rev., 24, 869&amp;ndash;896, 2005. </reference>
		<reference numeration="22" content_type="text"> Gildor, H. and Ghil, M.: Phase relations between climate proxy records: Potential effect of seasonal precipitation changes, Geophys. Res. Lett., 29, 1024, doi:10.1029/2001GL013781, 2002. </reference>
		<reference numeration="23" content_type="text"> Heinze, C.: Towards the time dependent modeling of sediment core data on a global basis, Geophys. Res. Lett., 28, 4211&amp;ndash;4214, 2001. </reference>
		<reference numeration="24" content_type="text"> Köhler P. and Fischer, H.: Simulating low frequency changes in atmospheric CO&lt;sub&gt;2&lt;/sub&gt; during the last 740 000 years, Clim. Past, 2, 57&amp;ndash;78, 2006. </reference>
		<reference numeration="25" content_type="text"> Kumar, N., Anderson, R. F., Mortlock, R. A., Froelich, P. N., Kubik, P., Dittrich-Hannen, B., and Suter, M.: Increased biological productivity and export production in the glacial Southern Ocean, Nature, 378, 675&amp;ndash;680, 1995. </reference>
		<reference numeration="26" content_type="text"> Martin, J. H.: Glacial-interglacial CO&lt;sub&gt;2&lt;/sub&gt; change; the iron hypothesis, Paleoceanography, 5, 1&amp;ndash;13, 1990. </reference>
		<reference numeration="27" content_type="text"> Matsumoto, K., Sarmiento, J. L., and Brzezinski, M. A.: Silicic acid leakage from the Southern Ocean: A possible explanation for glacial atmospheric $p$CO&lt;sub&gt;2&lt;/sub&gt;, Global Biogeochem. Cy., 16, 1031, doi:10.1029/2001GB001442, 2002. </reference>
		<reference numeration="28" content_type="text"> Mortlock, R. A., Charles, C. D., Froelich, P. N., Zibello, M. A., Saltzman, J., et al.: Evidence for lower productivity in the Antarctic Ocean during the last glaciation, Nature, 351, 220&amp;ndash;222, 1991. </reference>
		<reference numeration="29" content_type="text"> Munhoven, G. and Francois, L. M.: Glacial-interglacial variability of atmospheric CO&lt;sub&gt;2&lt;/sub&gt; due to changing continental silicate rock weathering: A model study, J. Geophys. Res., 101, 21 423&amp;ndash;21 437, 1996. </reference>
		<reference numeration="30" content_type="text"> Petit, J. R., Jouzel, J., Raynaud, D., Barkov, N. I., Barnola, J.-M., et al.: Climate and Atmospheric History of the Past 420 000 years from the Vostok Ice Core, Antarctica, Nature, 399, 429&amp;ndash;436, 1999. </reference>
		<reference numeration="31" content_type="text"> Pope, R. H., Demaster, D. J., Smith, C. R., and Seltmann, H.: Rapid bioturbation in equatorial Pacific sediments &amp;ndash; Evidence from excess Th$^234$ measurements, Deep-Sea Res. Pt. II, 43, 1339&amp;ndash;1364, 1996. </reference>
		<reference numeration="32" content_type="text"> Ridgwell, A. J.: Glacial-interglacial perturbations in the global carbon cycle, PhD thesis, Univ. of East Anglia at Norwich, UK (http://www.seao2.org/pubs/ridgwell_2001.pdf), 2001. </reference>
		<reference numeration="33" content_type="text"> Ridgwell, A. J. and Watson, A. J.: Feedback between aeolian dust, climate and atmospheric CO&lt;sub&gt;2&lt;/sub&gt; in glacial time, Paleoceanography, 17, 1059, doi:10.1029/2001PA000729, 2002. </reference>
		<reference numeration="34" content_type="text"> Ridgwell, A. J., Watson, A. J., and Archer, D. A.: Modelling the response of the oceanic Si inventory to perturbation, and consequences for atmospheric CO&lt;sub&gt;2&lt;/sub&gt;, Global Biogeochem. Cy., 16, 1071, doi:10.1029/2002GB001877, 2002. </reference>
		<reference numeration="35" content_type="text"> Ridgwell, A. and Hargreaves, J.: Regulation of atmospheric CO&lt;sub&gt;2&lt;/sub&gt; by deep-sea sediments in an Earth System Model, Global Biogeochem. Cy., 21, GB2008, doi:10.1029/2006GB002764, 2007. </reference>
		<reference numeration="36" content_type="text"> Ridgwell, A., Hargreaves, J., Edwards, N., Annan, J., Lenton, T., Marsh, R., Yool, A., and Watson, A.: Marine geochemical data assimilation in an efficient Earth System Model of global biogeochemical cycling, Biogeosciences, 4, 87&amp;ndash;104, 2007. </reference>
		<reference numeration="37" content_type="text"> Sigman, D. M. and Boyle, E. A.: Glacial/interglacial variations in atmospheric carbon dioxide, Nature, 407, 859&amp;ndash;869, 2000. </reference>
		<reference numeration="38" content_type="text"> Stephens, B. B. and Keeling, R. F.: The influence of Antarctic sea ice on glacial-interglacial CO&lt;sub&gt;2&lt;/sub&gt; variations, Nature, 404, 171&amp;ndash;174, 2000. </reference>
		<reference numeration="39" content_type="text"> Stocker, T. F. and Wright, D. G.: Rapid changes in ocean circulation and atmospheric radiocarbon, Paleoceanography, 11, 773&amp;ndash;795, 1996. </reference>
		<reference numeration="40" content_type="text"> Takahashi, T., Feely, R. A., Weiss, R. F., Wanninkhof, R. H., Chipman, D. W., et al.: Global air-sea flux of CO&lt;sub&gt;2&lt;/sub&gt;: An estimate based on measurements of sea-air $p$CO&lt;sub&gt;2&lt;/sub&gt; difference, Proc. Nat. Acad. Sci. U.S.A., 94, 8292&amp;ndash;8299, 1997. </reference>
		<reference numeration="41" content_type="text"> Toggweiler, J. R.: Variation of atmospheric CO&lt;sub&gt;2&lt;/sub&gt; by ventilation of the ocean&apos;s deepest water, Paleoceanography, 14, 571&amp;ndash;588, 1999. </reference>
		<reference numeration="42" content_type="text"> Toggweiler, J. R., Russell, J. L., and Carson, S. R.: Midlatitude westerlies, atmospheric CO&lt;sub&gt;2&lt;/sub&gt; and climate change during the ice ages, Paleoceanography, 21, 2005, doi:10.1029/2005PA001154, 2006. </reference>
		<reference numeration="43" content_type="text"> Walker, J. C. G. and Opdyke, B. C.: Influence of variable rates of netiric carbonate deposition on atmospheric carbon dioxide and pelagic sediments, Paleoceanography, 10, 415&amp;ndash;427, 1995. </reference>
		<reference numeration="44" content_type="text"> Watson, A. J., Bakker, D. C. E., Ridgwell, A. J., Boyd , P. W., and Law, C. S.: Effect of iron supply on Southern Ocean CO&lt;sub&gt;2&lt;/sub&gt; uptake and implications for glacial atmospheric CO&lt;sub&gt;2&lt;/sub&gt;, Nature, 407, 730&amp;ndash;733, 2000. </reference>
	</references>
</article>

