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首页> 外文期刊>Lithos: An International Journal of Mineralogy, Petrology, and Geochemistry >The role of serpentinites in cycling of carbon and sulfur: Seafloor serpentinization and subduction metamorphism
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The role of serpentinites in cycling of carbon and sulfur: Seafloor serpentinization and subduction metamorphism

机译:蛇纹岩在碳和硫循环中的作用:海底蛇纹岩化和俯冲变质作用

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摘要

We summarize the uptake of carbon and sulfur during serpentinization of seafloor peridotites, and discuss the fate of these volatiles during subduction of serpentinite. We use a simplified classification to divide seafloor serpentinization into high-temperature and low-temperature processes. High-temperature serpentinization typically involves heat and mass transfer from gabbro intrusions, leading to addition of hydrothermal sulfide sulfur (up to >1 wt%) having high δ~(34)S values ( + 5 to + 10‰). Total carbon contents of bulk rocks are elevated (0.008-0.603 wt.%) compared to mantle values and δ~(13)C_(Total C) values of - 3‰ to - 17.5%° result from mixtures of organic carbon and seawater-derived carbonate. Low-temperature serpentinization is generally characterized by microbial reduction of seawater sulfate, which leads to addition of sulfide sulfur (up to 1.4 wt.%) having negative δ~(34)S values (down to - 45‰), although local closed-system conditions can lead to reservoir effects and positive δ~(34)S values (up to + 27‰). Extensive circulation of cold seawater can cause oxidation, loss of sulfide, and addition of seawater sulfate resulting in high δ~(34)S_(Total-S) values. High total carbon contents (0.006-7.2 wt%) and δ~(13)C values of -26 to +2.2‰ result from addition of variable proportions of organic carbon and seawater-derived carbonate to serpentinite. We estimate that serpentinization at mid ocean ridges is a sink for 0.35-0.64x10~(11) mol C y~(-1) and 0.13-1.46x10~(11) mol S y~(-1) comparable to the sinks of these elements per unit volume of mafic oceanic crust Serpentinization in the subducting plate at subduction zones may further affect chemical budgets for serpentinization. During subduction metamorphism, sulfur and carbon contents remain unaffected by recrystallization of seafloor lizardite and chrysotile to antigorite, and formation of minor olivine. Dehydration of antigorite-serpentinites to chlorite-harzburgites at higher pressure and temperature results in loss of 5 wt% water, and an average of 260 ppm sulfur is lost as sulfate having δ~(34)S = 14.5%°, whereas carbon is unaffected. These volatiles can induce melting and contribute to ~(34)S enrichments and oxidation of the sub-arc mantle wedge. Serpentinized oceanic peridotites carry isotopically fractionated water, carbon and sulfur into subduction zones. Up to 0.49 x 10~(11) mol sulfur y~(-1) and 1.7 x 10~(11) mol carbon y~(-1) are subducted in serpentinites, less than 3% of the total subduction budgets for each of these elements. Isotopically fractionated carbon, sulfur, and water remain in serpentinite dehydration products, however, and can be recycled deeper into the mantle where they may be significant for volatile budgets of the deep Earth.
机译:我们总结了海底橄榄岩蛇纹石化过程中碳和硫的吸收,并讨论了蛇纹石俯冲过程中这些挥发物的命运。我们使用简化的分类将海底蛇纹石化分为高温和低温过程。高温蛇纹石化通常涉及辉长岩侵入体的热量和质量传递,导致添加具有较高δ〜(34)S值(+ 5至+ 10‰)的热液硫化物硫(至多> 1 wt%)。与地幔值相比,大块岩石的总碳含量提高了(0.008-0.603 wt。%),而有机碳和海水的混合物产生的δ〜(13)C_(总C)值为-3‰至-17.5%°。衍生的碳酸盐。低温蛇形化的特征通常是微生物还原海水中的硫酸盐,这导致添加具有负δ〜(34)S值(低至-45‰)的硫化物硫(最高1.4 wt。%),尽管局部封闭-系统条件可能导致储层效应和正δ〜(34)S值(最高+ 27‰)。冷海水的广泛循环会导致氧化,硫化物的损失和海水硫酸盐的添加,从而导致较高的δ〜(34)S_(Total-S)值。高总碳含量(0.006-7.2 wt%)和δ〜(13)C值为-26至+ 2.2‰是由于在蛇纹石中添加了不同比例的有机碳和海水衍生的碳酸盐。我们估计大洋中脊的蛇纹石化是0.35-0.64x10〜(11)mol C y〜(-1)和0.13-1.46x10〜(11)mol S y〜(-1)的汇。这些单位体积的镁铁质洋壳在俯冲带俯冲板块中的蛇纹石化可能会进一步影响蛇纹石化的化学预算。在俯冲变质作用期间,硫和碳含量不受海底蜥蜴石和温石棉重结晶成蛇毒石以及形成少量橄榄石的影响。在较高的压力和温度下将蛇毒蛇纹石脱水成绿泥石-哈茨伯格石会导致水损失5 wt%,并且由于δ〜(34)S = 14.5%°的硫酸盐,平均损失了260 ppm的硫,而碳不受影响。这些挥发物可引起熔化并有助于〜(34)S富集和亚弧幔楔的氧化。蛇纹化的海洋橄榄岩将同位素分馏出的水,碳和硫带入俯冲带。在蛇纹岩中最多可俯冲到0.49 x 10〜(11)mol硫y〜(-1)和1.7 x 10〜(11)mol碳y〜(-1),少于每种方法的总俯冲预算的3%这些要素。同位素分馏的碳,硫和水保留在蛇纹石脱水产物中,并且可以更深地循环到地幔中,这对于深层地球的动荡预算可能是重要的。

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