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April 17, 2026Moscow University Chemistry Bulletin0 citations

Viscosity of Concentrated Water-in-Oil Emulsions within the Framework of the Structural Model

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VMV. N. MatveenkoEKE. A. Kirsanov

Key Points

  • To explore how a structural rheological model explains viscosity and flow behaviors of concentrated emulsions.
  • Utilized a structural rheological model to analyze viscosity curves and flow curves.
  • Observed the behavior of emulsions under different shear rates.
  • Developed equations to describe the relationship between viscosity coefficients and volume fraction.
  • Studied the impact of hydrodynamic forces on droplet aggregation and structural breakdown.
  • Viscosity curves revealed distinct intervals of shear rates with specific behaviors.
  • Generalized flow equation captured emulsion structure breakdown under tensile forces.
  • Observed complex changes in the compactness coefficient with increasing concentration.
  • Rate constant for droplet aggregate formation highlighted under compressive forces.

Abstract

A structural rheological model is used to interpret the viscosity curves and flow curves of concentrated emulsions consisting of water droplets in oil. It is shown that the rheological curves can be divided into separate intervals of shear rates, within which the experimental data are approximated by the rheological equations of the structural model. The generalized flow equation describes the breakdown of the emulsion structure under the action of tensile hydrodynamic forces. The second rheological equation additionally includes a rate constant related to the process of droplet aggregate formation under the action of compressive hydrodynamic forces. The dependence of the generalized flow equation coefficients ₂^{1/2} and ₂^{1/2} on the volume fraction Φ is described by separate equations which utilize hydrodynamic parameters. The compactness coefficient χ, associated with the spontaneous rupture of droplets, changes in a complex manner with increasing concentration, which may be related to the formation of aggregates and the change in droplet shape due to deformation upon droplet contact.

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Cite This Study

Matveenko et al. (2026) studied this question.

synapsesocial.com/papers/69e1cf985cdc762e9d8588f8https://doi.org/10.3103/s0027131426700033
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Also Consider

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  4. 4Peculiarities of rheological properties and flow of highly concentrated emulsions: The role of concentration and droplet size2007 · 76 citations
  5. 5Rheology of Dispersions2010 · 167 citations