Effect of nanocellulose on linear viscoelastic behavior of zwitterionic wormlike micelle

被引:0
|
作者
Qin W. [1 ,2 ]
Jiang G. [2 ]
Qin G. [2 ]
Yang J. [2 ]
机构
[1] Shaanxi Key Laboratory of Advanced Stimulation Technology for Oil & Gas Reservoirs, Xi'an Petroleum University, Xi'an
[2] College of Petroleum Engineering, Xi'an Petroleum University, Xi'an
关键词
Linear viscoelastic behavior; Micelle; Nanocellulose; Stimulation; Surfactant solutions;
D O I
10.13801/j.cnki.fhclxb.20180328.004
中图分类号
学科分类号
摘要
The thermal stability of zwitterionic wormlike micelle(Z-WLM) solution with different nanocelluloses(NCs) was investigated. The effects of NCs concentration on the dynamic viscoelastic behavior, thixotropy and creep of Z-WLM were studied by linear rheological methods. The experimental result shows that a wormlike micelle(WLM) structure is formed by 4wt% erucy lamidopropyl betaine surfactant solution with many unique rheological properties, including shear thinning behavior, viscoelastic behavior, creep behavior and higher thixotropy recovery behavior, et al. Compared to other NCs, the NCs with high -COOH mass fraction and large aspect ratio possess better thickening efficiency. Moreover, the NCs can increase the Z-WLM solution's relaxation time and storage modulus, extend its thixotropy recovery time of shear viscosity and dynamic modulus, improve its creep recovery performance and thermal stability, which can use as a stimulation fluid in high temperature reservoirs from 70℃ to 100℃. With the increase of NCs concentration, the viscoelasticity and creep recovery performance of composite systems are increased and its thixotropy recovery performance is decreased. © 2019, Editorial Office of Acta Materiae Compositae Sinica. All right reserved.
引用
收藏
页码:514 / 521
页数:7
相关论文
共 22 条
  • [11] Boufi S., Kaddami H., Dufresne A., Mechanical performance and transparency of nanocellulose reinforced polymer nanocomposites, Macromolecular Materials & Engineering, 299, 5, pp. 560-568, (2014)
  • [12] Liu H., Luo B., Chen R., Et al., Preparation and characterization of nano cellulose whiskers reinforced and toughened poly(L-lactic acid) based composites, Acta Materiae Compositae Sinica, 32, 6, pp. 1703-1713, (2015)
  • [13] Forsre S., Konrad M., Lindner P., Shear thinning and orientational ordering of wormlike micelles, Physical Review Letters, 94, 1, (2005)
  • [14] Luo M.L., Jia Z.L., Sun H.T., Et al., Rheological behavior and microstructure of an anionic surfactant micelle solution with pyroelectric nanoparticle, Colloids & Surfaces A: Physicochemical & Engineering Aspects, 395, 395, pp. 267-275, (2012)
  • [15] Zhang W., Li G., Li Y., Statics and dynamics of wormlike surfactant micelles, China Surfactant Detergent & Cosmetics, 5, pp. 34-41, (1999)
  • [16] Helgeson M.E., Hodgdon T.K., Kaler E.W., Et al., Formation and rheology of viscoelastic "double networks" in wormlike micelle-nanoparticle mixtures, Langmuir the Acs Journal of Surfaces & Colloids, 26, 11, pp. 8049-8060, (2010)
  • [17] Zhou Y., Cui W., Yang J., Et al., Performance evaluation of a novel supramolecular fracturing fluid, Oilfield Chemistry, 32, 2, pp. 180-184, (2015)
  • [18] Lv S., Shao Z., Zhang Z., Et al., Studies on rheological properties of gelled propellant based on new energetic cellulose, Acta Chimica Sinica, 70, 2, pp. 200-206, (2012)
  • [19] Wang H., Zhang R., Zhang X., Et al., Dynamic shear creep characteristics of asphalt mortar, Journal of Shandong University (Engineering Science), 46, 4, pp. 68-75, (2016)
  • [20] Sun Q., Wang A., Zhang J., Et al., Rheological properties of hydrophobic associative polymer APP4, Journal of Chengdou University of Technology (Science & Technology Edition), 39, 1, pp. 104-106, (2012)