岩石/CO2/盐水系统的地球化学相互作用:对CO2地球封存的影响

A. Adila, A. Raza, Yihuai Zhang, Mohamed Mahmoud, M. Arif
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摘要

碳捕集与封存(CCS)是一种很有前途的技术,可以减少二氧化碳排放,实现净零目标。然而,地质储存过程的效率是二氧化碳/岩石/盐水相互作用的复杂函数。特别是,含水层中CO2/岩石/盐水系统之间的地球化学相互作用及其对润湿行为的相关影响尚未得到严格的研究。本文从地球化学角度研究了影响CO2/岩石/盐水体系润湿性的关键参数。我们特别研究了温度、压力和盐度对CO2/方解石/盐水体系润湿性的影响。根据方解石表面电位计算的分离压力来评估润湿性。所使用的地球化学模拟器是基于表面络合模拟,并考虑了矿物和水的溶解和沉淀反应。结果表明,压力的增加降低了方解石表面组分> cao2 +和>CO3−的浓度,而增加了方解石表面组分>CaCO3−的浓度。随着温度的升高,方解石表面组分>CaCO3−和>CO3−的浓度增加,而表面组分>CaOH2+的浓度略有降低。结果还表明,在较高的温度和较低的盐度下,方解石的表面电位和分离压力更高,这反映了在这些条件下,富方解石含水层的水润湿性增加(或二氧化碳润湿性降低)和更大的二氧化碳储存潜力。本文研究了不同影响参数对CO2/岩/盐水相互作用和CO2/岩/盐水润湿性的影响,有助于理解各种工况下CCS项目所涉及的地球化学过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Geochemical Interactions Among Rock/CO2/Brine Systems: Implications for CO2 Geo-Storage
Carbon Capture and Storage (CCS) is one of the promising techniques to mitigate carbon dioxide emissions and move towards net zero targets. The efficiency of a geological storage process is, however, a complex function of CO2/rock/brine interactions. In particular, the effect of geochemical interactions among CO2/rock/brine systems in an aquifer and its associated impact on wetting behavior has not been rigorously investigated before. In this work, we study the effect of the critical parameters affecting the CO2/rock/brine system wettability from a geochemical perspective. In particular, we study the effect of temperature, pressure, and salinity on the wettability of the CO2/calcite/brine system. The wettability was assessed based on the disjoining pressure, which was calculated from calcite surface potential. The geochemical simulator used is based on surface complexation modeling and takes dissolution and precipitations reactions of the minerals and aqueous species into account. The results show that increasing pressure decreases the concentration of calcite surface species >CaOH2+ and >CO3−, while it increases the calcite surface species >CaCO3−. However, increasing temperature increases the concentration of calcite surface species >CaCO3− and >CO3−, while it slightly decreases the calcite surface species >CaOH2+. The results also show higher calcite surface potential and disjoining pressure at higher temperatures and lower salinity, which reflects an increase in water wettability (or a decrease in CO2-wetness) and greater CO2 storage potential in calcite-rich aquifers at these conditions. This paper provides insight into the effect of different influencing parameters on the CO2/rock/brine interactions and CO2/rock/brine wettability, which can help understand the geochemical processes involved in CCS projects under a wide range of operating conditions.
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