首页> 外文期刊>Nature geoscience >Important role for organic carbon in subduction-zone fluids in the deep carbon cycle
【24h】

Important role for organic carbon in subduction-zone fluids in the deep carbon cycle

机译:在深碳循环中有机碳在俯冲带流体中的重要作用

获取原文
获取原文并翻译 | 示例
           

摘要

Supercritical aqueous fluids link subducting plates and the return of carbon to Earth's surface in the deep carbon cycle~(1,2). The amount of carbon in the fluids and the identities of the dissolved carbon species are not known, which leaves the deep carbon budget poorly constrained~3. Traditional models~(4,5), which assume that carbon exists in deep fluids as dissolved gas molecules, cannot predict the solubility and ionic speciation of carbon in its silicate rock environment. Recent advances enable these limitations to be overcome when evaluating the deep carbon cycle~(6-8). Here we use the Deep Earth Water theoretical model~7 to calculate carbon speciation and solubility in fluids under upper mantle conditions.We find that fluids in equilibrium with mantle peridotite minerals generally contain carbon in a dissolved gas molecule form. However, fluids in equilibrium with diamonds and eclogitic minerals in the subducting slab contain abundant dissolved organic and inorganic ionic carbon species. The high concentrations of dissolved carbon species provide a mechanism to transport large amounts of carbon out of the subduction zone, where the ionic carbon species may influence the oxidation state of the mantlewedge. Our results also identify novel mechanisms that can lead to diamond formation and the variability of carbon isotopic composition via precipitation of the dissolved organic carbon species in the subduction-zone fluids.
机译:在深碳循环中(1,2),超临界水流体连接俯冲板和碳返回地球表面。流体中的碳含量和溶解的碳种类的身份未知,这使得深层碳预算难以约束〜3。传统模型[4,5]假设碳以溶解的气体分子形式存在于深层流体中,但无法预测碳在硅酸盐岩环境中的溶解度和离子形态。最新的进展使评估深碳循环〜(6-8)时可以克服这些限制。这里我们使用深水理论模型〜7来计算上地幔条件下流体中的碳形态和溶解度,我们发现与地幔橄榄岩矿物平衡的流体通常含有溶解气体分子形式的碳。但是,俯冲板中与金刚石和鳞片矿物平衡的流体含有大量溶解的有机和无机离子碳。高浓度的溶解碳物质提供了将大量碳运出俯冲带的机制,其中离子碳物质可能会影响幔楔的氧化态。我们的研究结果还确定了通过俯冲带流体中溶解的有机碳物质的沉淀可导致金刚石形成和碳同位素组成变化的新机制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号