Phase behavior and rheological characterization of silica nanoparticle gel

Applied Nanoscience - Tập 4 - Trang 93-101 - 2012
Cigdem O. Metin1, Kelli M. Rankin1, Quoc P. Nguyen1
1Department of Petroleum and Geosystems Engineering, The University of Texas at Austin, Austin, USA

Tóm tắt

Preferential injection into high permeability thief zones or fractures can result in early breakthrough at production wells and large unswept areas of high oil saturation, which impact the economic life of a well. A variety of conformance control techniques, including polymer and silica gel treatments, have been designed to block flow through the swept zones. Over a certain range of salinities, silica nanoparticle suspensions form a gel in bulk phase behavior tests. These gels have potential for in situ flow diversion, but in situ flow tests are required to determine their applicability. To determine the appropriate scope of the in situ tests, it is necessary to obtain an accurate description of nanoparticle phase behavior and gel rheology. In this paper, the equilibrium phase behavior of silica nanoparticle solutions in the presence of sodium chloride (NaCl) is presented with four phase regions classified as a function of salinity and nanoparticle concentration. Once the gelation window was clearly defined, rheology experiments of silica nanoparticle gels were also carried out. Gelation time decreases exponentially as a function of silica concentration, salinity, and temperature. Following a power law behavior, the storage modulus, G′, increases with particle concentration. Steady shear measurements show that silica nanoparticle gels exhibit non-Newtonian, shear thinning behavior. This comprehensive study of the silica nanoparticle gels has provided a clear path forward for in situ tests to determine the gel’s applicability for conformance control operations.

Tài liệu tham khảo

Amiri A, Øye G, Sjöblom J (2011) Temperature and pressure effects on stability and gelation properties of silica suspensions. Colloids Surf A 378(1–3):14–21 Burns LD et al (2008) New generation silicate gel system for casing repairs and water shutoff. SPE 113490 presented at SPE/DOE symposium on improved oil recovery, Tulsa, Oklahoma, 20–23 April 2008 Campbell AI et al (2005) Dynamical arrest in attractive colloids: the effect of long-range repulsion. Phys Rev Lett 94(20):2083011–2083014 Dai C, You Q, Zhao LF, Xiong W (2010) Study and field application of profile control agent in high temperature and high salinity reservoir. SPE 132765-MS presented at Trinidad and tobago energy resources conference, Port of Spain, Trinidad, 27–30 June 2010 de Candia A et al (2005) Colloidal gelation, percolation and structural arrest. Phys A 358:239–248 Hyun K, Kim SH, Ahn KH, Lee SJ (2002) Large amplitude oscillatory shear as a way to classify the complex fluids. J Non-Newtonian Fluid Mech 107:51–65 Jurinak JJ, LE Summers (1991) Oilfield applications of colloidal silica gel. SPE Prod Eng 6(11):406–412 (SPE-18505-PA) Larson G (1999) The structure of complex fluids. Oxford university press, New York Lu PJ et al (2008) Gelation of particles with short-range attraction. Nature 453:499–504 Manley et al (2005) Time-dependent strength of colloidal gels. Phys Rev Lett 95(4):048302–048305 Martin JE, Wilcoxon JP (1989) Spatial correlation and growth in dilute gels. Phys Rev A 39:252–258 Metin CO, Lake LW, Miranda CR, Nguyen QP (2011) Stability of aqueous silica nanoparticle dispersions. J Nanopart Res 13:839–850 Metin CO et al (2012a) Aggregation kinetics and shear rheology of aqueous silica suspensions. J Nanopart Res, submitted Metin CO, Rankin KM, Nguyen QP (2012b) Phase behavior and rheological characterization of silica nanoparticle gel. Prepr Pap-Am Chem Soc, Div Pet Chem 57(1), San Diego, March 2012 Senis D, Allain C (1997) Scaling analysis of sediment equilibrium in aggregated colloidal suspensions. Phys Rev E 55:7797–7800 Shih WH et al (1990) Scaling behavior of the elastic properties of colloidal gels. Phys Rev A 42:4772–4779 Silva RF, Vasconcelos WL (1999) Influence of processing variables on the pore structure of silica gels obtained with tetraethylorthosilicate. Mater Res 2:197–200 Smith WE, Zukoski CF (2006) Aggregation and gelation kinetics of fumed silica–ethanol suspensions. J Colloid Int Sci 304:359–369 Stavland A et al (2011) In-depth water diversion using sodium silicate on snorre—factors controlling in-depth placement. SPE 143836 presented at SPE European formation damage conference, Noordwijk, The Netherlands, 7–10 June 2011 Wang GH, Zhang LM (2009) A bio friendly silica gel for insitu protein entrapment: biopolymer-assisted formation and its kinetic mechanism. J Phys Chem 113:2688–2694 Yziquel F, Carreau PJ, Moan M, Tanguy PA (1999) Rheological modeling of concentrated colloidal suspension. J Non-Newtonian Fluid Mech 86(1):133–155