Modeling the global ocean iron cycle

被引:131
作者
Parekh, P
Follows, MJ
Boyle, E
机构
[1] MIT, Dept Earth Atmospher & Planetary Sci, Cambridge, MA 02139 USA
[2] Woods Hole Oceanog Inst, Dept Marine Chem & Geochem, Woods Hole, MA 02543 USA
关键词
modeling; ocean iron cycle;
D O I
10.1029/2003GB002061
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
[1] We describe a model of the ocean transport and biogeochemical cycling of iron and the subsequent control on export production and macronutrient distributions. Ocean transport of phosphorus and iron are represented by a highly idealized six-box ocean model. Export production is parameterized simply; it is limited by light, phosphate, and iron availability in the surface ocean. We prescribe the regional variations in aeolian deposition of iron and examine three parameterizations of iron cycling in the deep ocean: ( 1) net scavenging onto particles, the simplest model; ( 2) scavenging and desorption of iron to and from particles, analogous to thorium; and ( 3) complexation. Provided that some unknown parameter values can be set appropriately, all three biogeochemical models are capable of reproducing the broad features of the iron distribution observed in the modern ocean and explicitly lead to regions of elevated surface phosphate, particularly in the Southern Ocean. We compare the sensitivity of Southern Ocean surface macronutrient concentration to increased aeolian dust supply for each parameterization. Both scavenging-based representations respond to increasing dust supply with a drawdown of surface phosphate in an almost linear relationship. The complexation parameterization, however, asymptotes toward a limited drawdown of phosphate under the assumption that ligand production does not respond to increased dust flux. In the scavenging based models, deep water iron concentrations and, therefore, upwelled iron continually increase with greater dust supply. In contrast, the availability of complexing ligand provides an upper limit for the deep water iron concentration in the latter model.
引用
收藏
页数:16
相关论文
共 50 条
[1]   A Model of the iron cycle in the ocean [J].
Archer, DE ;
Johnson, K .
GLOBAL BIOGEOCHEMICAL CYCLES, 2000, 14 (01) :269-279
[2]   Atmospheric pCO2 sensitivity to the biological pump in the ocean [J].
Archer, DE ;
Eshel, G ;
Winguth, A ;
Broecker, W ;
Pierrehumbert, R ;
Tobis, M ;
Jacob, R .
GLOBAL BIOGEOCHEMICAL CYCLES, 2000, 14 (04) :1219-1230
[3]   DISTRIBUTION OF THORIUM ISOTOPES BETWEEN DISSOLVED AND PARTICULATE FORMS IN THE DEEP-SEA [J].
BACON, MP ;
ANDERSON, RF .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1982, 87 (NC3) :2045-2056
[4]   MITESS: a moored in situ trace element serial sampler for deep-sea moorings [J].
Bell, J ;
Betts, J ;
Boyle, E .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2002, 49 (11) :2103-2118
[5]   A mesoscale phytoplankton bloom in the polar Southern Ocean stimulated by iron fertilization [J].
Boyd, PW ;
Watson, AJ ;
Law, CS ;
Abraham, ER ;
Trull, T ;
Murdoch, R ;
Bakker, DCE ;
Bowie, AR ;
Buesseler, KO ;
Chang, H ;
Charette, M ;
Croot, P ;
Downing, K ;
Frew, R ;
Gall, M ;
Hadfield, M ;
Hall, J ;
Harvey, M ;
Jameson, G ;
LaRoche, J ;
Liddicoat, M ;
Ling, R ;
Maldonado, MT ;
McKay, RM ;
Nodder, S ;
Pickmere, S ;
Pridmore, R ;
Rintoul, S ;
Safi, K ;
Sutton, P ;
Strzepek, R ;
Tanneberger, K ;
Turner, S ;
Waite, A ;
Zeldis, J .
NATURE, 2000, 407 (6805) :695-702
[6]   Organic complexation of iron in the Southern Ocean [J].
Boye, M ;
van den Berg, CMG ;
de Jong, JTM ;
Leach, H ;
Croot, P ;
de Baar, HJW .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2001, 48 (06) :1477-1497
[7]  
Boyle E, 1997, MAR CHEM, V57, P163, DOI 10.1016/S0304-4203(97)00044-3
[8]   How strong is the Harvardton-Bear constraint? [J].
Broecker, W ;
Lynch-Stieglitz, J ;
Archer, D ;
Hofmann, M ;
Maier-Reimer, E ;
Marchal, O ;
Stocker, T ;
Gruber, N .
GLOBAL BIOGEOCHEMICAL CYCLES, 1999, 13 (04) :817-820
[9]   THE ROLE OF CaCO3 COMPENSATION THE GLACIAL TO INTERGLACIAL ATMOSPHERIC CO2 CHANGE [J].
Broecker, Wallace ;
Peng, Tsung-Hung .
GLOBAL BIOGEOCHEMICAL CYCLES, 1987, 1 (01) :15-29
[10]   CARBON-CYCLE - 1985 GLACIAL TO INTERGLACIAL CHANGES IN THE OPERATION OF THE GLOBAL CARBON-CYCLE [J].
BROECKER, WS ;
PENG, TH .
RADIOCARBON, 1986, 28 (2A) :309-327