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Effect of Salinity on Silica Nanoparticle Adsorption Kinetics and Mechanisms for Fluid/Rock Interaction with Calcite

机译:盐度对二氧化硅纳米粒子吸附动力学及方解石流体/岩石相互作用机理的影响

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摘要

This study addresses the kinetics of silica nanoparticle adsorption on calcite from a solution at three salinities: deionized water (DIW), synthetic seawater (SSW), and low salinity water (LSW). The nanoparticle adsorption mechanisms and the effects on calcite dissolution are addressed. It was shown that nanoparticle adsorption was best described with the second-order-kinetic model and that silica nanoparticle adsorption reduced calcite dissolution. This was confirmed by measuring the Ca2+ ion concentration, the pH, and by estimating the amount of calcite dissolved. This is an important conclusion of this work, especially as LSW as an enhanced oil recovery technique is a candidate for use in chalk fields. Less formation damage/dissolution of chalk when silica nanoparticles are combined with LSW can lower the risk of reservoir subsidence. Intraparticle diffusion and the pseudo-second-order models, indicated a reduction in the adsorption rate with increasing nanoparticle concentration in LSW. This is explained by possible repulsive forces among the nanoparticles as they diffuse from the bulk fluid onto the calcite surface. Ion charges reduce the repulsion among the nanoparticles through shielding. However, an increasing nanoparticle concentration reduces the shielding efficiency by the ions. Estimates of the surface forces confirmed that nanoparticle–mineral interaction is less attractive in LSW as compared to SSW and DIW.
机译:这项研究解决了三种盐度下溶液中方解石上二氧化硅纳米颗粒的吸附动力学:去离子水(DIW),合成海水(SSW)和低盐度水(LSW)。解决了纳米粒子的吸附机理及其对方解石溶解的影响。结果表明,用二级动力学模型可以最好地描述纳米颗粒的吸附,而二氧化硅纳米颗粒的吸附可以减少方解石的溶解。通过测量Ca 2 + 离子浓度,pH值和估算溶解的方解石量,可以证实这一点。这是这项工作的重要结论,特别是因为LSW作为一种增强的采油技术已被广泛用于白垩领域。当二氧化硅纳米粒子与LSW组合使用时,白垩粉对地层的破坏/溶解减少,可以降低储层沉降的风险。颗粒内扩散和伪二级模型表明,随着LSW中纳米颗粒浓度的增加,吸附速率降低。这可以通过当纳米颗粒从本体流体扩散到方解石表面时可能存在的排斥力来解释。离子电荷通过屏蔽减少了纳米粒子之间的排斥。然而,增加的纳米粒子浓度降低了离子的屏蔽效率。表面力的估计值证实,与SSW和DIW相比,LSW中的纳米粒子与矿物的相互作用吸引力较小。

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