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Olivine Dissolution in Seawater: Implications forCO2 Sequestration through Enhanced Weathering in CoastalEnvironments

机译:橄榄石在海水中的溶解:对海洋的影响通过加强沿海地区的风化来封存二氧化碳环境环境

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摘要

Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as a large-scale climate engineering approach. When implemented in coastal environments, olivine weathering is expected to increase seawater alkalinity, thus resulting in additional CO2 uptake from the atmosphere. However, the mechanisms of marine olivine weathering and its effect on seawater–carbonate chemistry remain poorly understood. Here, we present results from batch reaction experiments, in which forsteritic olivine was subjected to rotational agitation in different seawater media for periods of days to months. Olivine dissolution caused a significant increase in alkalinity of the seawater with a consequent DIC increase due to CO2 invasion, thus confirming viability of the basic concept of enhanced silicate weathering. However, our experiments also identified several important challenges with respect to the detailed quantification of the CO2 sequestration efficiency under field conditions, which include nonstoichiometric dissolution, potential pore water saturation in the seabed, and the potential occurrence of secondary reactions. Before enhanced weathering of olivine in coastal environments can be considered an option for realizing negative CO2 emissions for climatemitigation purposes, these aspects need further experimental assessment.
机译:作为一种大规模的气候工程方法,已经提出了增强(超)碱性硅酸盐岩石如富橄榄石的榴辉岩的风化作用。在沿海环境中实施时,预计橄榄石风化会增加海水的碱度,从而导致大气中二氧化碳的吸收量增加。然而,海洋橄榄石风化的机理及其对海水碳酸盐化学的影响仍然知之甚少。在这里,我们提供了批处理反应实验的结果,其中,在不同的海水介质中,对橄榄石橄榄石进行了数天至数月的旋转搅拌。橄榄石的溶解引起海水碱度的显着增加,并由于CO2的入侵而使DIC增加,从而证实了增强硅酸盐风化的基本概念的可行性。但是,我们的实验还确定了在野外条件下详细量化CO2封存效率的几个重要挑战,包括非化学计量溶解,海床中潜在的孔隙水饱和度以及可能发生的次级反应。在改善沿海环境中橄榄石的风化之前,可以将其视为实现气候负CO2排放的一种选择缓解的目的,这些方面需要进一步的实验评估。

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