Nanofluids Development to Improve Oil Recovery: A Synergistic Effect Investigation

L. Hendraningrat, N. Razali, Chee Sheau Chien
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Abstract

Various type of nanoparticles has been studied in last decade for improve oil recovery purpose and observed its mechanisms of displacing oil concluded as disjoining pressure that involved wettability alteration, log-jamming, and viscosity effect. This paper focus on the investigation of new potential mechanism of nanoparticles to improve oil recovery with study case in an offshore Malaysian oilfield. The silica-based nanoparticles were used in this study, and additives of polymer and surfactant were involved to improve stability of fluid and observe any potential of novel mechanism. The nanoparticles were characterized under electron microscope, dispersed, and sonicated in saline water as replicated of injected water to be nanofluids for particular concentrations. A degassed crude oil from Malaysian field was used with viscosity of 3 cP. All fluids measured their rheology and fluid properties. A polymer additive was used to improve particles stability dispersed in saline water. Meanwhile, a surfactant additive was added into the formulation to observe any synergetic effect of displacing oil. The interfacial tension (IFT), optical contact angle (OCA), and relative permeability measurement using native cores at reservoir condition to observe potential novel mechanism. The additive showed better performance in term of stability and wettability alteration through IFT reduction and reducing contact angle to render more water-wet through dynamic OCA measurement. The synergistic effect was observed when surfactant added into the nanofluids, and classified as fragmentation. The IFT reduced significantly when nanofluids contact with crude oil from field after 10-20 minutes and oil drop started disintegration. This phenomenon was identified consistently through OCA measurement. It altered surface of rock from medium water-wet to strong water-wet. The relative permeability measurement showed consistent wettability alteration that the curve shifted from water-wet to be stronger water-wet. This observation not only showcases the great potential of nanoparticles but also providing a new reference for synthesizing and formulating nanoparticles as a technique to improve oil recovery.
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纳米流体开发提高原油采收率:协同效应研究
近十年来,为了提高采收率,研究了各种类型的纳米颗粒的驱油机理,认为纳米颗粒的驱油机理涉及润湿性改变、测井干扰和粘度效应。本文以马来西亚某海上油田为例,探讨纳米颗粒提高采收率的潜在新机理。本研究采用硅基纳米颗粒,通过添加聚合物和表面活性剂来提高流体的稳定性,并观察其新机制的可能性。在电子显微镜下对纳米颗粒进行了表征,并将其分散在盐水中,与注入水复制成特定浓度的纳米流体。使用马来西亚油田的脱气原油,粘度为3cp,所有流体都测量了它们的流变性和流体性质。采用聚合物添加剂提高颗粒在盐水中的分散稳定性。同时,在配方中加入表面活性剂添加剂,观察其驱油的协同效应。利用天然岩心在储层条件下进行界面张力(IFT)、光学接触角(OCA)和相对渗透率测量,观察潜在的新机制。通过动态OCA测试,该添加剂通过降低IFT和减小接触角来提高水湿性,在稳定性和润湿性方面表现出较好的性能。在纳米流体中加入表面活性剂,观察到协同作用,并将其归类为破碎。当纳米流体与油田原油接触10 ~ 20分钟后,油滴开始崩解,IFT显著降低。这一现象是通过OCA测量一致确定的。它使岩石表面由中等水湿性变为强水湿性。相对渗透率测量显示出一致的润湿性变化,曲线由水湿向强水湿转变。这一发现不仅展示了纳米颗粒的巨大潜力,也为纳米颗粒的合成和配方作为提高采收率的技术提供了新的参考。
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