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Improvement of non-aqueous colloidal gas aphron-based drilling fluids properties: role of hydrophobic nanoparticles

Hassani, A. H ; Sharif University of Technology

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  1. Type of Document: Article
  2. DOI: 10.1016/j.jngse.2017.03.005
  3. Abstract:
  4. Application of the colloidal gas aphrons (CGAs) in minimizing formation damage by plugging pore mechanism is now wildly accepted due to numerous successful field experience. One of the pivotal factors which affects the pore blockage ability of micro-bubbles is their stability. This experimental study tries to investigate the possible synergistic effect of nanoparticles on improving the stability and other properties of non-aqueous CGA drilling fluids, in both bulk and porous media. In particular, two types of hydrophobic nanoparticles including silicon dioxide nanopowder coated with 2 wt% Silane and nanoclay, in presence of a treated version of bentonite (Bentone 34) as a stabilizer and sorbitane monooleate as a non-ionic surfactant are utilized for the formulation of kerosene-based CGA fluids. Results of measuring static drainage rate, API filtration loss, and return permeability in a special designed radial flooding sandpack showed that presence of nanoparticles enhances the stability, filtration loss properties, and the pore blockage ability of non-aqueous CGA drilling fluids. Compared to hydrophobic SiO2, hydrophobic nanoclay was more effective in increasing the stability and plugging performance of non-aqueous CGAs, at an optimum concentration. Also, rheological analysis indicated that nanoparticle addition increases the low shear rate viscosity of non-aqueous CGA fluids and boosts their cutting transport capacity. Optimum concentrations of stabilizer and surfactant were observed to be 3.5 gr in 100 cc kerosene and 1.8 wt%, respectively. Obtained results may provide a better background for the physico-chemical characterization of non-aqueous CGA fluids, especially in presence of nanoparticles. © 2017 Elsevier B.V
  5. Keywords:
  6. Colloidal gas aphron (CGA) drilling fluid ; Pore blockage ability ; Rheological behavior ; Convergence of numerical methods ; Cutting fluids ; Hydrophobicity ; Kerosene ; Nanocomposites ; Nanoparticles ; Nanostructured materials ; Oil well drilling ; Porous materials ; Silicon oxides ; Stability ; Surface active agents ; Transport properties ; Well drilling ; Colloidal gas aphrons ; Filtration loss ; Hydrophobic nanoparticles ; Nanoparticle addition ; Optimum concentration ; Physico-chemical characterization ; Pore blockages ; Rheological behaviors ; Drilling fluids
  7. Source: Journal of Natural Gas Science and Engineering ; Volume 42 , 2017 , Pages 1-12 ; 18755100 (ISSN)
  8. URL: https://www.sciencedirect.com/science/article/abs/pii/S1875510017301117