- Open Access
- Access by Xinjiang University
Inelastic non-Newtonian flow over heterogeneously slippery surfaces
Phys. Rev. E 95, 023105 – Published 9 February, 2017
DOI: https://doi.org/10.1103/PhysRevE.95.023105
Abstract
In this study, we investigated inelastic non-Newtonian fluid flow over heterogeneously slippery surfaces. First, we simulated the flow of aqueous xanthan gum solutions over a bubble mattress, which is a superhydrophobic surface consisting of transversely positioned no-slip walls and no-shear gas bubbles. The results reveal that for shear-thinning fluids wall slip can be increased significantly, provided that the system is operated in the shear-thinning regime. For a 0.2 wt% xanthan gum solution with a power-law index of , the numerical results indicate that wall slip can be enhanced 3.2 times when compared to a Newtonian liquid. This enhancement factor was also predicted from a theoretical analysis, which gave an expression for the maximum slip length that can be attained over flat, heterogeneously slippery surfaces. Although this equation was derived for a no-slip/no-shear unit length that is much larger than the typical size of the system, we found that it can also be used to predict the enhancement in the regime where the slip length is proportional to the size of the no-shear region or the bubble width. The results could be coupled to the hydrodynamic development or entrance length of the system, as maximum wall slip is only reached when the fluid flow can fully adapt to the no-slip and no-shear conditions at the wall.
Physics Subject Headings (PhySH)
Article Text
References (69)
- C. L. M. H. Navier, Mem. Acad. Sci. Int. Fr. 6, 389 (1823).
- C. Neto, D. R. Evans, E. Bonaccurso, H.-J. Butt, and V. S. J. Craig, Rep. Prog. Phys. 68, 2859 (2005).
- J. P. Rothstein, Annu. Rev. Fluid Mech. 42, 89 (2010).
- T. Lee, E. Charrault, and C. Neto, Adv. Colloid Interfac. 210, 21 (2014).
- R. S. Voronov, D. V. Papavassiliou, and L. L. Lee, Ind. Eng. Chem. Res. 47, 2455 (2008).
- Y. Xue, P. Lv, H. Lin, and H. Duan, Appl. Mech. Rev. 68, 030803 (2016).
- Y. Cohen and A. B. Metzner, J. Rheol. 29, 67 (1985).
- W. Schowalter, J. Non-Newt. Fluid Mech. 29, 25 (1988).
- H. A. Barnes, J. Non-Newt. Fluid Mech. 56, 221 (1995).
- T. Sochi, Polym. Rev. 51, 309 (2011).
- S. G. Hatzikiriakos, Soft Matter 11, 7851 (2015).
- F. Brochard and P. G. de Gennes, Langmuir 8, 3033 (1992).
- K. B. Migler, H. Hervet, and L. Leger, Phys. Rev. Lett. 70, 287 (1993).
- A. L. Yarin, J. Rheol. 42, 1491 (1998).
- H. C. Lau and W. R. Schowalter, J. Rheol. 30, 193 (1986).
- S. Richardson, J. Fluid Mech. 59, 707 (1973).
- Y. Zhu and S. Granick, Phys. Rev. Lett. 88, 106102 (2002).
- S. Granick, Y. Zhu, and H. Lee, Nat. Mater. 2, 221 (2003).
- J. Sanchez-Reyes and L. A. Archer, Langmuir 19, 3304 (2003).
- A. Y. Malkin, Polym. Sci. Ser. A 51, 80 (2009).
- R. Tuinier and T. Taniguchi, J. Phys. Condens. Matter 17, L9 (2005).
- R. Tuinier, J. K. G. Dhont, T. Taniguchi, and T.-H. Fan, AIP Conf. Proc. 982, 326 (2008).
- F. García-Ochoa, V. E. Santos, J. A. Casas, and E. Gómez, Biotechn. Adv. 18, 549 (2000).
- J. de Vicente, J. R. Stokes, and H. A. Spikes, Tribol. Int. 38, 515 (2005).
- L. De Vargas and O. Manero, Polym. Eng. Sci. 29, 1232 (1989).
- R. Baeza, A. M. R. Pilosof, C. C. Sanchez, and J. M. Rodríguez Patino, AIChE J. 52, 2627 (2006).
- D. Ausserré, H. Hervet, and F. Rondelez, Macromolecules 19, 85 (1986).
- H. Müller-Mohnssen, J. Rheol. 34, 223 (1990).
- A. Omari, J. Rheol. 33, 1 (1989).
- E. Duering and Y. Rabin, Macromolecules 23, 2232 (1990).
- D. Ausserré, J. Edwards, J. Lecourtier, H. Hervet, and F. Rondelez, Europhys. Lett. 14, 33 (1991).
- G. Chauveteau, J. Rheol. 26, 111 (1982).
- A. M. Jamieson, J. G. Southwick, and J. Blackwell, J. Polym. Sci., A-2, Polym. Phys. 20, 1513 (1982).
- M. Milas, M. Rinaudo, and B. Tinland, Polym. Bull. 14, 157 (1985).
- G. Cuvelier and B. Launay, Carbohyd. Polym. 6, 321 (1986).
- M. Milas, M. Rinaudo, M. Knipper, and J. L. Schuppiser, Macromolecules 23, 2506 (1990).
- A. Gamini and M. Mandel, Biopolymers 34, 783 (1994).
- S. K. Gulrez, S. Al-Assaf, Y. Fang, G. O. Phillips, and A. P. Gunning, Carbohyd. Polym. 90, 1235 (2012).
- J. R. Philip, Z. angew. Math. Phy. 23, 353 (1972).
- E. Lauga and H. A. Stone, J. Fluid Mech. 489, 55 (2003).
- C. Ybert, C. Barentin, C. Cottin-Bizonne, P. Joseph, and L. Bocquet, Phys. Fluids 19, 123601 (2007).
- C. J. Pipe, T. S. Majmudar, and G. H. McKinley, Rheol. Acta 47, 621 (2008).
- S. J. Gibbs, D. Xing, T. A. Carpenter, and L. D. Hall, J. Rheol. 38, 1757 (1994).
- S. J. Gibbs, J. Rheol. 40, 425 (1996).
- C. J. Rofe, J. Rheol. 40, 1115 (1996).
- J. Davies, D. Maynes, B. W. Webb, and B. Woolford, Phys. Fluids 18, 087110 (2006).
- D. Maynes, K. Jeffs, B. Woolford, and B. W. Webb, Phys. Fluids 19, 093603 (2007).
- E. S. Asmolov, S. Schmieschek, J. Harting, and O. I. Vinogradova, Phys. Rev. E 87, 023005 (2013).
- C. Schönecker and S. Hardt, J. Fluid Mech. 717, 376 (2013).
- C. J. Teo and B. C. Khoo, Microfluid. Nanofluid. 17, 891 (2014).
- G. G. Pereira, J. Non-Newt. Fluid Mech. 157, 197 (2009).
- S. Dhondi, G. G. Pereira, and S. C. Hendy, Phys. Rev. E 80, 036309 (2009).
- A.-L. Vayssade, C. Lee, E. Terriac, F. Monti, M. Cloitre, and P. Tabeling, Phys. Rev. E 89, 052309 (2014).
- D. Broboana, N. O. Tanase, and C. Balan, J. Non-Newt. Fluid Mech. 222, 151 (2015).
- P. Nghe, E. Terriac, M. Schneider, Z. Li, M. Cloitre, B. Abecassis, and P. Tabeling, Lab Chip 11, 788 (2011).
- F. J. Galindo-Rosales, M. A. Alves, and M. S. N. Oliveira, Microfluid. Nanofluid. 14, 1 (2013).
- G. D'Avino, F. Greco, and P. L. Maffettone, Annu. Rev. Fluid Mech. 49, 341 (2017).
- F. J. H. Gijsen, E. Allanic, F. N. van de Vosse, and J. D. Janssen, J. Biomech. 32, 705 (1999).
- G. B. Thurston and N. M. Henderson, Biorheology 43, 729 (2006).
- P. Yager, T. Edwards, E. Fu, K. Helton, K. Nelson, M. R. Tam, and B. H. Weigl, Nature 442, 412 (2006).
- M. Karle, S. K. Vashist, R. Zengerle, and F. von Stetten, Anal. Chim. Acta 929, 1 (2016).
- H. A. Barnes, J. F. Hutton, and K. Walters, An Introduction to Rheology (Elsevier, Amsterdam, 1989).
- P. E. Arratia, G. A. Voth, and J. P. Gollub, Phys. Fluids 17, 053102 (2005).
- A. M. J. Davis and E. Lauga, Phys. Fluids 21, 011701 (2009).
- E. Karatay, A. S. Haase, C. W. Visser, C. Sun, D. Lohse, P. A. Tsai, and R. G. H. Lammertink, Proc. Natl. Acad. Sci. USA 110, 8422 (2013).
- T. F. Assis, E. E. G. Rojas, G. C. Guimarães, M. C. Coelho, A. V. Ramos, B. S. Costa, and J. S. R. Coimbra, Int. J. Thermophys. 31, 513 (2010).
- L. M. J. Sprakel, Non-Newtonian Flow on Bubble Mattresses, MSc thesis, University of Twente, 2014.
- J. A. Schetz and A. E. Fuhs, Fundamentals of Fluid Mechanics (John Wiley & Sons, New York, 1999).
- R. J. Poole and B. S. Ridley, J. Fluids Eng. 129, 1281 (2007).