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文石溶解保护海底方解石。

Aragonite dissolution protects calcite at the seafloor.

机构信息

Department of Earth Sciences, Utrecht University, Utrecht, The Netherlands.

Département d'Astrophysique, Géophysique et Océanographie, Université de Liège, Liège, Belgium.

出版信息

Nat Commun. 2022 Mar 1;13(1):1104. doi: 10.1038/s41467-022-28711-z.

Abstract

In the open ocean, calcium carbonates are mainly found in two mineral forms. Calcite, the least soluble, is widespread at the seafloor, while aragonite, the more soluble, is rarely preserved in marine sediments. Despite its greater solubility, research has shown that aragonite, whose contribution to global pelagic calcification could be at par with that of calcite, is able to reach the deep-ocean. If large quantities of aragonite settle and dissolve at the seafloor, this represents a large source of alkalinity that buffers the deep ocean and favours the preservation of less soluble calcite, acting as a deep-sea, carbonate version of galvanization. Here, we investigate the role of aragonite dissolution on the early diagenesis of calcite-rich sediments using a novel 3D, micrometric-scale reactive-transport model combined with 3D, X-ray tomography structures of natural aragonite and calcite shells. Results highlight the important role of diffusive transport in benthic calcium carbonate dissolution, in agreement with recent work. We show that, locally, aragonite fluxes to the seafloor could be sufficient to suppress calcite dissolution in the top layer of the seabed, possibly causing calcite recrystallization. As aragonite producers are particularly vulnerable to ocean acidification, the proposed galvanizing effect of aragonite could be weakened in the future, and calcite dissolution at the sediment-water interface will have to cover a greater share of CO neutralization.

摘要

在开阔的海洋中,碳酸钙主要以两种矿物形式存在。方解石是最不溶的,广泛分布在海底,而文石是更易溶解的,在海洋沉积物中很少保存。尽管文石的溶解度更大,但研究表明,文石能够到达深海,其对全球浮游钙化的贡献可能与方解石相当。如果大量的文石在海底沉淀和溶解,这将是一个很大的碱源,缓冲深海,并有利于更难溶解的方解石的保存,起到深海碳酸盐镀锌的作用。在这里,我们使用一种新的 3D 微观尺度反应输运模型,结合天然文石和方解石贝壳的 3D X 射线断层结构,研究文石溶解对方解石丰富沉积物早期成岩作用的影响。结果突出了扩散输运在底栖碳酸钙溶解中的重要作用,这与最近的研究结果一致。我们表明,局部上,文石向海底的通量可能足以抑制海底表层中方解石的溶解,可能导致方解石再结晶。由于文石生产者特别容易受到海洋酸化的影响,文石的这种镀锌效应在未来可能会减弱,而在沉积物-水界面的方解石溶解将不得不承担更多的 CO2 中和作用。

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