Effect of the salt-induced micellar microstructure on the nonlinear shear flow behavior of ionic cetylpyridinium chloride surfactant solutions

D. Gaudino, R. Pasquino, H. Kriegs, N. Szekely, W. Pyckhout-Hintzen, M. P. Lettinga, and N. Grizzuti
Phys. Rev. E 95, 032603 – Published 7 March 2017

Abstract

The shear flow dynamics of linear and branched wormlike micellar systems based on cetylpyridinium chloride and sodium salicylate in brine solution is investigated through rheometric and scattering techniques. In particular, the flow and the structural flow response are explored via velocimetry measurements and rheological and rheometric small-angle neutron scattering (SANS) experiments, respectively. Although all micellar solutions display a similar shear thinning behavior in the nonlinear regime, the experimental results show that shear banding sets in only when the micelle contour length L¯ is sufficiently long, independent of the nature of the micellar connections (either linear or branched micelles). Using rheometric SANS, we observe that the shear banding systems both show very similar orientational ordering as a function of Weissenberg number, while the short branched micelles manifest an unexpected increase of ordering at very low Weissenberg numbers. This suggests the presence of an additional flow-induced relaxation process that is peculiar for branched systems.

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  • Received 31 July 2016
  • Revised 5 December 2016
  • Corrected 17 April 2017

DOI:https://doi.org/10.1103/PhysRevE.95.032603

©2017 American Physical Society

Physics Subject Headings (PhySH)

Fluid DynamicsPolymers & Soft Matter

Corrections

17 April 2017

Erratum

Publisher's Note: Effect of the salt-induced micellar microstructure on the nonlinear shear flow behavior of ionic cetylpyridinium chloride surfactant solutions [Phys. Rev. E 95, 032603 (2017)]

D. Gaudino, R. Pasquino, H. Kriegs, N. Szekely, W. Pyckhout-Hintzen, M. P. Lettinga, and N. Grizzuti
Phys. Rev. E 95, 049902 (2017)

Authors & Affiliations

D. Gaudino1,*, R. Pasquino1, H. Kriegs2, N. Szekely3, W. Pyckhout-Hintzen4, M. P. Lettinga2,5, and N. Grizzuti1

  • 1Dipartimento di Ingegneria Chimica, dei Materiali d della Produzione Industriale, Università degli Studi di Napoli Federico II, Piazzale Vincenzo Tecchio 80, 80125 Napoli, Italy
  • 2Institute for Complex Systems, Forschungszentrum Jülich, 52425 Jülich, Germany
  • 3Jülich Centre for Neutron Science Outstation at MLZ, Lichtenbergstrasse 1, 85747 Garching, Germany
  • 4Jülich Centre for Neutron Science, Forschungszentrum Jülich GmbH, 52425 Jülich, Germany
  • 5Laboratory for Soft Matter and Biophysics, KU Leuven, Celestijnenlaan 200D, 3001 Leuven, Belgium

  • *danila.gaudino@unina.it

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Vol. 95, Iss. 3 — March 2017

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