Biogenic silica recycling in surficial sediments across the Polar Front of the Southern Ocean (Indian Sector)

被引:81
作者
Rabouille, C
Gaillard, JF
Treguer, P
Vincendeau, MA
机构
[1] NORTHWESTERN UNIV,DEPT CIVIL ENGN,EVANSTON,IL 60208
[2] UNIV BRETAGNE OCCIDENTALE,INST EUROPEEN MER,F-29285 BREST,FRANCE
关键词
D O I
10.1016/S0967-0645(96)00108-7
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
The processes controlling preservation and recycling of particulate biogenic silica in superficial sediments must be understood before one uses biogenic silica as a proxy in paleooceanographic studies, and in order to compute oceanic mass balances for silica. In this respect, the Antarctic Ocean is certainly a key region due to its high productivity and export of biogenic silica. In order to quantify sedimentary fluxes and identify crucial processes that allow the preservation of biogenic silica, pore water and solid phase silica profiles were performed on sediment cores from the Southern Ocean (Indian Sector) during the ANTARES 1 cruise. In combination with solubility data reported by Van Cappellen and Qiu (1997a), a process model representing the early diagenesis of silica was developed. In this model, a dependence with depth of the kinetic constant was introduced to allow the preservation of biogenic silica in sediment porewater undersaturated with respect to that phase. Using this steady-state model, it is proposed that a proportionality of the reactivity of the biogenic silica with its settling flux is necessary to explain the observed profiles. It is then shown using this model that the preservation of biogenic silica is not a linear function of the deposited flux. Using a modified version of this model containing an explicit term of reprecipitation, we hypothesize that reprecipitation alone cannot counterbalance dissolution and that its effect is certainly related to a decrease in either surface solubility or kinetics of dissolution. (C) 1997 Elsevier Science Ltd.
引用
收藏
页码:1151 / 1176
页数:26
相关论文
共 50 条
[1]   BIOSILICEOUS PARTICLE-FLUX IN THE SOUTHERN-OCEAN [J].
ABELMANN, A ;
GERSONDE, R .
MARINE CHEMISTRY, 1991, 35 (1-4) :503-536
[2]   WHAT CONTROLS OPAL PRESERVATION IN TROPICAL DEEP-SEA SEDIMENTS [J].
ARCHER, D ;
LYLE, M ;
RODGERS, K ;
FROELICH, P .
PALEOCEANOGRAPHY, 1993, 8 (01) :7-21
[3]   AUTHIGENIC SMECTITE ON DIATOM FRUSTULES IN BOLIVIAN SALINE LAKES [J].
BADAUT, D ;
RISACHER, F .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1983, 47 (03) :363-375
[4]  
BARCILLE G, 1991, MAR CHEM, V35, P537
[5]   AMS-C-14 AGES MEASURED IN DEEP-SEA CORES FROM THE SOUTHERN-OCEAN - IMPLICATIONS FOR SEDIMENTATION-RATES DURING ISOTOPE STAGE-2 [J].
BARD, E ;
LABEYRIE, L ;
ARNOLD, M ;
LABRACHERIE, M ;
PICHON, JJ ;
DUPRAT, J ;
DUPLESSY, JC .
QUATERNARY RESEARCH, 1989, 31 (02) :309-317
[6]  
BARNETT PRO, 1984, OCEANOL ACTA, V7, P257
[7]  
Berner R.A., 1974, SEA, V5, P427
[8]   RATE CONTROL OF MINERAL DISSOLUTION UNDER EARTH SURFACE CONDITIONS [J].
BERNER, RA .
AMERICAN JOURNAL OF SCIENCE, 1978, 278 (09) :1235-1252
[9]  
BERNER RA, 1980, EARLY DIAGENESIS
[10]   Nitrification rates, ammonium and nitrate distribution in upper layers of the water column and in sediments of the Indian sector of the Southern Ocean [J].
Bianchi, M ;
Feliatra, F ;
Treguer, P ;
Vincendeau, MA ;
Morvan, J .
DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 1997, 44 (05) :1017-1032