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Editorial

Editorial for Special Issue “Advances in Experimental and Computational Rheology”

by
Maria Teresa Cidade
1,* and
João Miguel Nóbrega
2,*
1
Departamento de Ciência dos Materiais and Cenimat/I3N, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, 2829-516 Caparica, Portugal
2
Institute for Polymers and Composites/I3N, University of Minho, Campus de Azurém 4800-058 Guimarães, Portugal
*
Authors to whom correspondence should be addressed.
Fluids 2019, 4(3), 131; https://doi.org/10.3390/fluids4030131
Submission received: 9 July 2019 / Accepted: 11 July 2019 / Published: 12 July 2019
(This article belongs to the Special Issue Advances in Experimental and Computational Rheology)
Rheology, defined as the science of deformation and flow of matter, is a multidisciplinary scientific field, covering both fundamental and applied approaches. The study of rheology includes both experimental and computational methods, which are not mutually exclusive. Its practical importance embraces many processes, from daily life, like preparing mayonnaise, spreading an ointment, or shampooing, to industrial processes like polymer processing and oil extraction, among several others. Practical applications include also formulation and product development.
The special issue “Advances in Experimental and Computational Rheology” joins fifteen works covering some of the latest advances in the fields of experimental and computational rheology applied to a diverse class of materials and processes, which can be grouped into four main topics: rheology [1,2,3,4,5], effect of process variables [6,7,8,9], rheometry and processing [10,11], and theoretical modeling [12,13,14,15]
The characterization of rheological behavior is the main topic of five contributions, covering the following material systems: lubricating greases (Delgado et al. [1]), Carbopol® dispersion in water and in water/glycerol solutions (Varges et al. [2]), natural hydraulic lime grouts (Baltazar et al. [3]), fresh cement pastes (Rubio-Hernández [4]), and legume-protein-stabilized emulsions (Félix et al. [5]).
The effect of process variables is covered in four papers. Kurz et al. [6] studied the droplet formation of Newtonian fluids and suspensions modified by spherical, non-colloidal particles. Fernandez et al. [7] investigated the effect of different irradiations/mixing on the rheology and electrical conductivity of PP/MWCNT nanocomposites. García et al. [8] evaluated the effect of temperature on the rheology of diutan and rhamsan gum aqueous solutions. Trujillo-Cayado et al. [9] described the effect of homogenization pressure on the rheological behavior of biopolymer-stabilized emulsions formulated with thyme oil.
Two of the special issue works are dedicated to rheometry and processing. Costa et al. [10] assessed the employment of piezoelectric sensors on the acquisition of steady melt pressures in polymer extrusion, and Costanzo et al. [11] evaluated the possibility of performing the linear and non-linear rheological characterization of samples with just a few milligrams.
Theoretical modeling is the main topic of the four remaining works. Fadoul and Coussot [12] proposed and performed a set of experiments to assess a theoretical model developed to predict the flow Saffman–Taylor instability in yield stress fluids. García-Sandoval et al. [13] studied the capability of the Bautista–Manero–Puig model to predict shear banding in polymer-like micellar solutions. Furtak-Cole and Telyakovskiy [14] resorted to 3D modelling techniques to assess the applicability of a simple 1D model for the flow in aquifers and fissures. Green et al. [15] proposed modifications of a previously developed constitutive model for shear thickening colloidal solutions, which explicitly accounts for the evolution of its microstructure during flow, and assessed its accuracy.
Finally, it is very important to recognize and acknowledge the effort put forth by the large number of anonymous reviewers, which has been essential to assuring the high quality of all the contributions of this special issue.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Delgado, M.A.; Secouard, S.; Valencia, C.; Franco, J.M. On the Steady-State Flow and Yielding Behaviour of Lubricating Greases. Fluids 2019, 4, 6. [Google Scholar] [CrossRef]
  2. Varges, P.R.; Costa, C.M.; Fonseca, B.S.; Naccache, M.F.; De Souza Mendes, P.R. Rheological Characterization of Carbopol® Dispersions in Water and in Water/Glycerol Solutions. Fluids 2019, 4, 3. [Google Scholar] [CrossRef]
  3. Baltazar, L.G.; Henriques, F.M.; Cidade, M.T. Rheology of Natural Hydraulic Lime Grouts for Conservation of Stone Masonry—Influence of Compositional and Processing Parameters. Fluids 2019, 4, 13. [Google Scholar] [CrossRef]
  4. Rubio-Hernández, F.J. Rheological Behavior of Fresh Cement Pastes. Fluids 2018, 3, 106. [Google Scholar] [CrossRef]
  5. Félix, M.; Romero, A.; Carrera-Sanchez, C.; Guerrero, A. A Comprehensive Approach from Interfacial to Bulk Properties of Legume Protein-Stabilized Emulsions. Fluids 2019, 4, 65. [Google Scholar] [CrossRef]
  6. Kurz, A.; Bauer, J.; Wagner, M. Piezo-Plunger Jetting Technology: An Experimental Study on Jetting Characteristics of Filled Epoxy Polymers. Fluids 2019, 4, 23. [Google Scholar] [CrossRef]
  7. Fernandez, M.; Huegun, A.; Santamaria, A. Relevance of Rheology on the Properties of PP/MWCNT Nanocomposites Elaborated with Different Irradiation/Mixing Protocols. Fluids 2019, 4, 7. [Google Scholar] [CrossRef]
  8. González, M.G.; García, M.C.; García, J.M.; Alfaro-Rodriguez, M.-C. A Comparison of the Effect of Temperature on the Rheological Properties of Diutan and Rhamsan Gum Aqueous Solutions. Fluids 2019, 4, 22. [Google Scholar] [CrossRef]
  9. Trujillo-Cayado, L.A.; Santos, J.; Calero, N.; Alfaro, M.D.C.; Muñoz, J. Influence of the Homogenization Pressure on the Rheology of Biopolymer-Stabilized Emulsions Formulated with Thyme Oil. Fluids 2019, 4, 29. [Google Scholar] [CrossRef]
  10. Costa, S.; Teixeira, P.F.; Covas, J.A.; Hilliou, L. Assessment of Piezoelectric Sensors for the Acquisition of Steady Melt Pressures in Polymer Extrusion. Fluids 2019, 4, 66. [Google Scholar] [CrossRef]
  11. Costanzo, S.; Pasquino, R.; Läuger, J.; Grizzuti, N. Milligram Size Rheology of Molten Polymers. Fluids 2019, 4, 28. [Google Scholar] [CrossRef]
  12. Fadoul, O.A.; Coussot, P. Saffman–Taylor Instability in Yield Stress Fluids: Theory–Experiment Comparison. Fluids 2019, 4, 53. [Google Scholar] [CrossRef]
  13. García-Sandoval, J.P.; Bautista, F.; Puig, J.E.; Manero, O. Inhomogeneous Flow of Wormlike Micelles: Predictions of the Generalized BMP Model with Normal Stresses. Fluids 2019, 4, 45. [Google Scholar] [CrossRef]
  14. Furtak-Cole, E.; Telyakovskiy, A.S. A 3D Numerical Study of Interface Effects Influencing Viscous Gravity Currents in a Parabolic Fissure, with Implications for Modeling with 1D Nonlinear Diffusion Equations. Fluids 2019, 4, 97. [Google Scholar] [CrossRef]
  15. Green, J.A.; Ryckman, D.J.; Cromer, M. A Continuum Model for Complex Flows of Shear Thickening Colloidal Solutions. Fluids 2019, 4, 21. [Google Scholar] [CrossRef]

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MDPI and ACS Style

Cidade, M.T.; Nóbrega, J.M. Editorial for Special Issue “Advances in Experimental and Computational Rheology”. Fluids 2019, 4, 131. https://doi.org/10.3390/fluids4030131

AMA Style

Cidade MT, Nóbrega JM. Editorial for Special Issue “Advances in Experimental and Computational Rheology”. Fluids. 2019; 4(3):131. https://doi.org/10.3390/fluids4030131

Chicago/Turabian Style

Cidade, Maria Teresa, and João Miguel Nóbrega. 2019. "Editorial for Special Issue “Advances in Experimental and Computational Rheology”" Fluids 4, no. 3: 131. https://doi.org/10.3390/fluids4030131

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