Synthesis of iron fertilization experiments:: From the iron age in the age of enlightenment -: art. no. C09S16

被引:569
作者
de Baar, HJW
Boyd, PW
Coale, KH
Landry, MR
Tsuda, A
Assmy, P
Bakker, DCE
Bozec, Y
Barber, RT
Brzezinski, MA
Buesseler, KO
Boyé, M
Croot, PL
Gervais, F
Gorbunov, MY
Harrison, PJ
Hiscock, WT
Laan, P
Lancelot, C
Law, CS
Levasseur, M
Marchetti, A
Millero, FJ
Nishioka, J
Nojiri, Y
van Oijen, T
Riebesell, U
Rijkenberg, MJA
Saito, H
Takeda, S
Timmermans, KR
Veldhuis, MJW
Waite, AM
Wong, CS
机构
[1] Royal Netherlands Inst Sea Res, NL-1790 AB Den Burg, Isle Of Texel, Netherlands
[2] Univ Groningen, NL-9750 AA Haren, Netherlands
[3] Univ Otago, Dept Chem, Ctr Chem & Phys Oceanog, Natl Inst Water & Atmospher Res, Dunedin 9003, New Zealand
[4] Moss Landing Marine Labs, Moss Landing, CA 95039 USA
[5] Univ Calif San Diego, Scripps Inst Oceanog, La Jolla, CA 92195 USA
[6] Univ Tokyo, Ocean Res Inst, Nakano Ku, Tokyo 1648639, Japan
[7] Alfred Wegener Inst Polar & Marine Res, D-27515 Bremerhaven, Germany
[8] Univ E Anglia, Sch Environm Sci, Norwich NR4 7TJ, Norfolk, England
[9] Duke Univ, Nicholas Sch Environm & Earth Sci, Beaufort, NC 28516 USA
[10] Univ Calif Santa Barbara, Inst Marine Sci, Santa Barbara, CA 93106 USA
[11] Univ Calif Santa Barbara, Dept Ecol Evolut Biol & Marine Biol, Santa Barbara, CA 93106 USA
[12] Woods Hole Oceanog Inst, Woods Hole, MA 02543 USA
[13] Univ Bretagne Occidentale, Brest, France
[14] IFM GEOMAR, Leibniz Inst Meereswissensch, D-24148 Kiel, Germany
[15] Rutgers State Univ, Inst Marine & Coastal Sci, New Brunswick, NJ 08901 USA
[16] Hong Kong Univ Sci & Technol, Atmospher Marine & Coastal Environm Program, Kowloon, Hong Kong, Peoples R China
[17] Univ Miami, Rosenstiel Sch Marine & Atmospher Sci, Miami, FL 33149 USA
[18] Free Univ Brussels, B-1050 Brussels, Belgium
[19] Natl Inst Water & Atmospher Res, Wellington, New Zealand
[20] Univ Laval, Dept Biol Quebec Ocean, Quebec City, PQ G1K 7P4, Canada
[21] Univ British Columbia, Vancouver, BC V6T 1Z4, Canada
[22] Cent Res Inst Elect Power Ind, Chiba 2701194, Japan
[23] Natl Inst Environm Studies, Tsukuba, Ibaraki 3058506, Japan
[24] Tohoku Natl Fisheries Res Inst, Shiogama, Miyagi 9850001, Japan
[25] Univ Tokyo, Dept Aquat Biosci, Bunkyo Ku, Tokyo 1138657, Japan
[26] Univ Western Australia, Ctr Water Res, Crawley, WA 6009, Australia
[27] Inst Ocean Sci, Fisheries & Oceans Canada, Sidney, BC V8L 4B2, Canada
关键词
D O I
10.1029/2004JC002601
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
[1] Comparison of eight iron experiments shows that maximum Chl a, the maximum DIC removal, and the overall DIC/ Fe efficiency all scale inversely with depth of the wind mixed layer (WML) defining the light environment. Moreover, lateral patch dilution, sea surface irradiance, temperature, and grazing play additional roles. The Southern Ocean experiments were most influenced by very deep WMLs. In contrast, light conditions were most favorable during SEEDS and SERIES as well as during IronEx-2. The two extreme experiments, EisenEx and SEEDS, can be linked via EisenEx bottle incubations with shallower simulated WML depth. Large diatoms always benefit the most from Fe addition, where a remarkably small group of thriving diatom species is dominated by universal response of Pseudo-nitzschia spp. Significant response of these moderate ( 10 - 30 mu m), medium ( 30 - 60 mu m), and large (> 60 mu m) diatoms is consistent with growth physiology determined for single species in natural seawater. The minimum level of "dissolved'' Fe ( filtrate < 0.2 mu m) maintained during an experiment determines the dominant diatom size class. However, this is further complicated by continuous transfer of original truly dissolved reduced Fe(II) into the colloidal pool, which may constitute some 75% of the "dissolved'' pool. Depth integration of carbon inventory changes partly compensates the adverse effects of a deep WML due to its greater integration depths, decreasing the differences in responses between the eight experiments. About half of depth-integrated overall primary productivity is reflected in a decrease of DIC. The overall C/Fe efficiency of DIC uptake is DIC/Fe similar to 5600 for all eight experiments. The increase of particulate organic carbon is about a quarter of the primary production, suggesting food web losses for the other three quarters. Replenishment of DIC by air/sea exchange tends to be a minor few percent of primary CO2 fixation but will continue well after observations have stopped. Export of carbon into deeper waters is difficult to assess and is until now firmly proven and quite modest in only two experiments.
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页码:1 / 24
页数:24
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