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在低温和高 pCO2 条件下水溶液中菱镁矿形成的动力学。

Dynamics of Magnesite Formation at Low Temperature and High pCO2 in Aqueous Solution.

机构信息

Pacific Northwest National Laboratory , P.O. Box 999, MS K8-96, Richland, Washington 99352, United States.

Department of Chemistry, The University of Alabama , Shelby Hall, Tuscaloosa, Alabama 35487, United States.

出版信息

Environ Sci Technol. 2015 Sep 1;49(17):10736-44. doi: 10.1021/acs.est.5b02588. Epub 2015 Aug 11.

Abstract

Magnesite precipitation from aqueous solution, despite conditions of supersaturation, is kinetically hindered at low temperatures for reasons that remain poorly understood. The present study examines the products of Mg(OH)2 reaction in solutions saturated with supercritical CO2 at high pressures (90 and 110 atm) and low temperatures (35 and 50 °C). Solids characterization combined with in situ solution analysis reveal that the first reaction products are the hydrated carbonates hydromagnesite and nesquehonite, appearing simultaneously with brucite dissolution. Magnesite is not observed until it comprises a minor product at 7 days reaction at 50 °C. Complete transition to magnesite as the sole product at 35 °C (135 days) and at a faster rate at 50 °C (56 days) occurs as the hydrated carbonates slowly dissolve under the slightly acidic conditions generated at high pCO2. Such a reaction progression at high pCO2 suggests that over long term the hydrated Mg-carbonates functioned as intermediates in magnesite formation. These findings highlight the importance of developing a better understanding of the processes expected to occur during CO2 storage. They also support the importance of integrating magnesite as an equilibrium phase in reactive transport calculations of the effects of CO2 sequestration on geological formations at long time scale.

摘要

尽管处于过饱和状态,但水合溶液中的菱镁矿沉淀在低温下由于某些原因而受到动力学抑制,这些原因目前仍未得到很好的理解。本研究考察了在高压(90 和 110 大气压)和低温(35 和 50°C)下超临界 CO2 饱和溶液中 Mg(OH)2 反应的产物。固体特性分析与原位溶液分析相结合表明,最初的反应产物是水合碳酸盐水菱镁矿和水镁石,它们与水滑石的溶解同时出现。直到在 50°C 下反应 7 天后,菱镁矿才作为次要产物出现。在 35°C(135 天)和 50°C(56 天)下,当在高 pCO2 下产生的稍酸性条件下,水合碳酸盐缓慢溶解时,菱镁矿完全转变为唯一产物。在高 pCO2 下发生这种反应进程表明,从长远来看,水合 Mg-碳酸盐在菱镁矿形成过程中可能起到了中间产物的作用。这些发现强调了开发更好地理解 CO2 储存过程中预期发生的过程的重要性。它们还支持将菱镁矿作为反应性运输计算中 CO2 封存对地质地层的长期影响的平衡相的重要性。

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