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Effects of coalescence and breakup on the steady-state morphology of an immiscible polymer blend in shear flow

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Abstract

The steady-state morphology of an immiscible polymer blend in shear flow has been investigated by optical microscopy techniques. The blend is composed by poly-isobutylene (PIB) and poly-dimethylsiloxane (PDMS) of comparable viscosity. Experiments were performed by means of a home-made transparent parallel plate device. The two plates can be independently counterrotated, so that sheared droplets of the dispersed phase can be kept fixed with respect to the microscope point of view, and observed for long times. The distribution of drops and their average size were measured directly during flow at different shear rates and for different blend compositions. It was found that the average drop size in steady-state conditions is a decreasing function of the applied shear rate, and does not depend on blend composition for volume fractions up to 10%. Experiments have proved that, in the shear rate range which could be investigated, the stationary morphology is controlled only by coalescence phenomena, droplet breakup playing no role in determining the size of the dispersed phase. More generally, it has been shown that the steady-state morphology is a function not only of the physical parameters of the blend and of the shear rate, but also of the initial conditions applied to the blend. The steady-state results reported in this paper constitute the first direct experimental confirmation of theoretical models which describe the mechanisms of shear-induced drop coalescence.

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References

  • Acrivos A, Lo TS (1978) Deformation and breakup of a single slender drop in an extensional flow. J Fluid Mech 86:641–672

    Google Scholar 

  • Chaffey CE, Brenner H, Mason SG (1965) Particle motions in sheared suspensions. XVII: Deformation and migration of liquid drops. Rheol Acta 4:56–63

    Google Scholar 

  • Chin HB, Han CD (1980) Studies on droplet deformation and breakup. II. Breakup of a droplet in nonuniform shear flow. J Rheol 24:1–37

    Google Scholar 

  • Cogswell FN, Griffin BP, Rose JB (1983) US Patent 4386174

  • Collyer AA (1996) The morphology and theology of liquid crystal polymer blends. In: Acierno A, Collyer AA (eds) Rheology and processing of liquid crystal polymers. Chapman and Hall, London, pp 185–217

    Google Scholar 

  • Elmendorp JJ, Van der Vegt AK (1986) A study on polymer blend microrheology: part IV. The influence of coalescence on blend morphology origination. Polym Eng Sci 26:1332–1338

    Google Scholar 

  • Elmendorp JJ (1991) Dispersive mixing in liquid systems. In: Rauwendaal C (ed) Mixing in polymer processing. Marcel Dekker, New York, pp 17–100

    Google Scholar 

  • Favis BD, Chalifoux JP (1987) The effect of viscosity ratio on the morphology of propylene/polycarbonate blends during processing. Polym Eng Sci 27:1591–1600

    Google Scholar 

  • Gauthier F, Goldsmith HL, Mason SG (1971) Particle motions in non-Newtonian media. I: Couette flow. Rheol Acta 10:344–364

    Google Scholar 

  • Grace HP (1982) Dispersion phenomena in high viscosity immiscible fluid systems and applications of static mixers as dispersion devices. Chem Eng Commun 14:225–277

    Google Scholar 

  • Graebling D, Muller R, Palierne JF (1993) Linear viscoelastic behavior of some incompatible polymer blends in the melt. Interpretation of data with a model of emulsion of viscoelastic liquids. Macromolecules 26:320–329

    Google Scholar 

  • Guido S, private communication

  • Janssen JMH (1993) Dynamics of liquid-liquid mixing. PhD Thesis, University of Technology, Eindhoven, The Netherlands

    Google Scholar 

  • Karam HJ, Bellinger JC (1968) Deformation and breakup of liquid droplets in a simple shear field. I&C Fund 7:576–581

    Google Scholar 

  • Krause S (1978) Polymer-polymer compatibility. In: Paul DR, Newman S (eds) Polymer blends. Academic Press, New York, pp 16–113

    Google Scholar 

  • Levitt L, Macosko CW, Pearson SD (1996) Influence of normal stress difference on polymer drop deformation. Polym Eng Sci 36:1647–1655

    Google Scholar 

  • Lingaae-Jorgensen J, Utracki LA (1991) Makromol Chem Macromol Symp 48/49:189

    Google Scholar 

  • MacKay GDM, Mason SG (1963) The gravity approach and coalescence of fluid drops at liquid interfaces. Canadian J Chem Eng 1:203–212

    Google Scholar 

  • Minale M, Moldenaers P, Mewis J (1996) Morphological memory effects in polymeric blends, presented at the Dutch Society of Rheology Meeting, Oct 23, 1996

  • Palierne JF (1990) Linear theology of viscoelastic emulsions with interfacial tension. Rheol Acta 29:204–214

    Google Scholar 

  • Rivera-Gastélum MJ, Wagner NJ (1996) A theological and morphological study of a copolyester liquid crystal/polypropylene blend system. J Polym Sci: Polym Phys 34:2433–2445

    Google Scholar 

  • Sigillo J, di Santo L, Guido S, Grizzuti N (1996) Comparative measurements of interfacial tension in a model polymer blend. Polym Eng Sci, in press

  • Sundararaj U, Macosko CW (1995) Drop breakup and coalescence in polymer blends: the effects of concentration and compatibilization. Macromolecules 28: 2647–2657

    Google Scholar 

  • Takahashi Y, Noda I (1995) In: Nakatarni AI, Dadmun MD (eds) Domain structures and viscoelastic properties of immiscible polymer blends under shear flow. Flow induced structure in polymers. ACS Washington, pp 140–152

    Google Scholar 

  • Taylor GI (1934) The formation of emulsions in definable fields of flow. Proc R Soc London A 146:501–523

    Google Scholar 

  • Tsai HY, Min K (1995) The flow-induced phase morphology of fluoroelastomer and polycarbonate blends during extrusion. Polym Eng Sci 35:619–636

    Google Scholar 

  • Utracki LA (1989) Polymer alloys and blends. Hauser Publishers, Munich

    Google Scholar 

  • Utracki LA, Shi ZH (1992) Development of polymer blend morphology during compounding in a twin-screw extruder, Part I, II and III. Polym Eng Sci 32:1824–1856

    Google Scholar 

  • Vinckier I, Moldenaers P, Mewis J (1996) Relationship between rheology and morphology of model blends in steady shear flow. J Rheol 40:613–631

    Google Scholar 

  • Vinckier I, Terracciano AM, Moldenaers P, Grizzuti N (1997) Flow induced coalescence in immiscible polymer blends. AIChE J (submitted)

  • Wu S (1987) Formation of dispersed phase in incompatible polymer blends: interfacial and theological effects. Polym Eng Sci 27:335–343

    Google Scholar 

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Correspondence to Nino Grizzuti.

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Grizzuti, N., Bifulco, O. Effects of coalescence and breakup on the steady-state morphology of an immiscible polymer blend in shear flow. Rheol Acta 36, 406–415 (1997). https://doi.org/10.1007/BF00396327

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  • DOI: https://doi.org/10.1007/BF00396327

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