Oil-Water Interfacial Tensions of Silica Nanoparticle-Surfactant Formulations

Author:

Al-Anssari Sarmad12,Wang Shaobin1,Barifcani Ahmed13,Iglauer Stefan3

Affiliation:

1. Department of Chemical Engineering , Curtin University, Kent Street, 6102 Bentley , Australia

2. Department of Chemical Engineering , University of Baghdad , Iraq

3. Department of Petroleum Engineering , Curtin University, 26 Dick Perry Avenue, 6151 Kensington , Australia

Abstract

Abstract The implementation of nanotechnology in all industries is one of most significant research fields. Nanoparticles have shown a promising application in subsurface fields. On the other hand, various surfactants have been used in the oil industry to reduce oil/water interfacial tension and also widely used to stabilize the nano-suspensions. The primary objective of this study was to investigate the improvements of surfactants ability in term of interfacial tension (γ) reduction utilizing addition of silicon dioxide nanoparticles at different temperatures and salinity. The pendant drop technique has been used to measure γ and electrical conductivity has been used to measure the critical micelle concentration (CMC). The synergistic effects of surfactant-nanoparticles, salt-nanoparticles, and surfactant-salt-nanoparticles on γ reduction and the critical micelle concentration of the surfactants have been investigated. Extensive series of experiments for γ and CMC measurements were performed. The optimum condition for each formulation is shown. We conclude that nanoparticles-surfactant can significantly reduce γ if correctly formulated.

Publisher

Walter de Gruyter GmbH

Subject

Condensed Matter Physics,General Chemical Engineering,General Chemistry

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