Application of Lignin Polymeric Nanofluid as a Chemical Enhanced Oil Recovery Agent at Reservoir Condition

Author:

Al_Ani M.1,Sidek M. A.1,Jaafar M. Z.2,Agi A.3,Gbonhinbor J.4,Ridzuan N.5,Mahat S. Q. A.5,Yakassai F.6,Ngouangna E.1,Oseh J.1

Affiliation:

1. Department of Petroleum Engineering, School of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Malaysia

2. Department of Petroleum Engineering, School of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Malaysia / Institute for Oil and Gas, Universiti Teknologi Malaysia, Malaysia

3. Faculty of Chemical and Process Engineering Technology, College of Engineering Technology, Universiti Malaysia Pahang, Gambang, Pahang, Malaysia / Centre for Research in Advanced Fluid and Processes Fluid Centre, Universiti Malaysia Pahang, Gambang, Pahang, Malaysia

4. Department of Petroleum Engineering, Faculty of Engineering, Niger Delta University, Wilberforce Island, Bayelsa State, Nigeria

5. Faculty of Chemical and Process Engineering Technology, College of Engineering Technology, Universiti Malaysia Pahang, Gambang, Pahang, Malaysia

6. Department of Petroleum Engineering, School of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Malaysia / Department of Chemical and Petroleum Engineering, Faculty of Engineering, Bayero University, Kano, Kano State, Nigeria

Abstract

Abstract Surfactant flooding constitutes part of the relevant enhanced oil recovery (EOR) technologies desirable for Malaysian oilfields. However, the high cost of synthetic surfactant production, high toxicity, susceptibility to high salinity reservoir condition, high adsorption rate and the strict regulation laid by government agencies in different countries has limited the growth of synthetic surfactant market in the post Covid-19 era. To solve this problem, the non-petroleum-based (biomass) surfactant can be used to replace the petroleum-based surfactant. Therefore, in this study lignin polymeric nanofluid (LPNF) was synthesized from sago bark using the method of ultrasonic assisted nanoprecipitation for EOR application. Besides, the surface morphology, functional groups, purity, structure and thermal stability of the lignin nanoparticles was determined using transmission electron microscopy, Fourier transform infrared spectroscopy, high pressure liquid chromatography, nuclear magnetic resonance and thermogravimetric analysis, respectively. The interfacial tension (IFT) of the formulated LPNF at oil-water interface was determined via a Kruss tensiometer. Thereafter, the ability of LPNF to alter the wettability of oil wet sandstone core was determined using a drop shape analyzer. TEM results indicate that lignin nanoparticles of size range 10-23 nm were produced. The zeta potential of -34 mV shows long-term stability of the nanofluid. The LPNF altered the wettability of the sandstone core from oil wet (133.3°) to water wet (10.2°), decreased IFT thereby indicating high propensity to increasing oil recovery at reservoir condition.

Publisher

SPE

Reference86 articles.

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4. Process optimization of reservoir fines trapping by mesoporous silica nanoparticles using Box-Behnken design;Agi;Alexandria Engineering Journal,2022

5. Dynamic Stabilization of Formation Fines to Enhance Oil Recovery of a Medium Permeability Sandstone Core at Reservoir Conditions;Agi;Journal of Molecular Liquids,2022

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