Skip to main content
Erschienen in: Rheologica Acta 6/2009

01.07.2009 | Original Contribution

The solid–fluid transition in a yield stress shear thinning physical gel

verfasst von: Andreas M. V. Putz, Teodor I. Burghelea

Erschienen in: Rheologica Acta | Ausgabe 6/2009

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

We present an experimental investigation of the solid–fluid transition in a yield stress shear thinning physical gel (Carbopol® 940) under shear. Upon a gradual increase of the external forcing, we observe three distinct deformation regimes: an elastic solid-like regime (characterized by a linear stress–strain dependence), a solid–fluid phase coexistence regime (characterized by a competition between destruction and reformation of the gel), and a purely viscous regime (characterized by a power law stress-rate of strain dependence). The competition between destruction and reformation of the gel is investigated via both systematic measurements of the dynamic elastic moduli (as a function of stress, the amplitude, and temperature) and unsteady flow ramps. The transition from solid behavior to fluid behavior displays a clear hysteresis upon increasing and decreasing values of the external forcing. We find that the deformation power corresponding to the hysteresis region scales linearly with the rate at which the material is being forced (the degree of flow unsteadiness). In the asymptotic limit of small forcing rates, our results agree well with previous steady state investigations of the yielding transition. Based on these experimental findings, we suggest an analogy between the solid–fluid transition and a first-order phase transition, e.g., the magnetization of a ferro-magnet where irreversibility and hysteresis emerge as a consequence of a phase coexistence regime. In order to get further insight into the solid–fluid transition, our experimental findings are complemented by a simple kinetic model that qualitatively describes the structural hysteresis observed in our rheological experiments. The model is fairly well validated against oscillatory flow data by a partial reconstruction of the Pipkin space of the material’s response and its nonlinear spectral behavior.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Fußnoten
1
Although such micrographs are typically affected by artifacts induced by the sample preconditioning, Piau (2007), they still provide useful information on the small-scale structural homogeneity of the sample.
 
Literatur
Zurück zum Zitat Barnes HA (1999) The yield stress—a review or ‘πα ντ α ρε ι’—everything flows? J Non-Newton Fluid Mech 81(1–2):133–178MATHCrossRef Barnes HA (1999) The yield stress—a review or ‘πα ντ α ρε ι’—everything flows? J Non-Newton Fluid Mech 81(1–2):133–178MATHCrossRef
Zurück zum Zitat Barnes HA, Walters K (1985) The yield stress myth? Rheol Acta 24:323–326CrossRef Barnes HA, Walters K (1985) The yield stress myth? Rheol Acta 24:323–326CrossRef
Zurück zum Zitat Barry BW, Meyer MC (1979a) Rheological properties of carbopol gels, I: continuous shear and creep properties of carbopol gels. Int J Pharm 2:1–25CrossRef Barry BW, Meyer MC (1979a) Rheological properties of carbopol gels, I: continuous shear and creep properties of carbopol gels. Int J Pharm 2:1–25CrossRef
Zurück zum Zitat Barry BW, Meyer MC (1979b) Rheological properties of carbopol gels, II: oscillatory properties of carbopol gels. Int J Pharm 2:27–40CrossRef Barry BW, Meyer MC (1979b) Rheological properties of carbopol gels, II: oscillatory properties of carbopol gels. Int J Pharm 2:27–40CrossRef
Zurück zum Zitat Beris AN, Tsamopoulos JA, Armstrong RC, Brown RA (1985) Creeping motion of a sphere through a Bingham plastic. J Fluid Mech 158:219–244MATHCrossRefADSMathSciNet Beris AN, Tsamopoulos JA, Armstrong RC, Brown RA (1985) Creeping motion of a sphere through a Bingham plastic. J Fluid Mech 158:219–244MATHCrossRefADSMathSciNet
Zurück zum Zitat Bonn D, Coussot P, Huynh HT, Bertrand F (2002) Rheology of soft glassy materials. Euro Phys Lett 5:786–792CrossRefADS Bonn D, Coussot P, Huynh HT, Bertrand F (2002) Rheology of soft glassy materials. Euro Phys Lett 5:786–792CrossRefADS
Zurück zum Zitat Coussot P (2005) Rheometry of pastes, suspensions and granular materials. Wiley, New YorkCrossRef Coussot P (2005) Rheometry of pastes, suspensions and granular materials. Wiley, New YorkCrossRef
Zurück zum Zitat Coussot P, Gaulard F (2005) Gravity flow instability of viscoplastic materials: the ketchup drip. Phys Rev E 72:031409CrossRefADS Coussot P, Gaulard F (2005) Gravity flow instability of viscoplastic materials: the ketchup drip. Phys Rev E 72:031409CrossRefADS
Zurück zum Zitat Coussot P, Tabuteau H (2006) Aging and solid or liquid behavior in pastes. J Rheol 50(6):975–994CrossRefADS Coussot P, Tabuteau H (2006) Aging and solid or liquid behavior in pastes. J Rheol 50(6):975–994CrossRefADS
Zurück zum Zitat Coussot P, Tocquer L, Lanos C, Ovarlez G (2009) Macroscopic vs local rheology of yield stress fluids. J Non-Newton Fluid Mech 158(1–3):85–90CrossRef Coussot P, Tocquer L, Lanos C, Ovarlez G (2009) Macroscopic vs local rheology of yield stress fluids. J Non-Newton Fluid Mech 158(1–3):85–90CrossRef
Zurück zum Zitat Da Cruz F, Chevoir F, Bonn D, Coussot P (2002) Viscosity bifurcation in granular materials, foams, and emulsions. Phys Rev E 66:051305CrossRefADS Da Cruz F, Chevoir F, Bonn D, Coussot P (2002) Viscosity bifurcation in granular materials, foams, and emulsions. Phys Rev E 66:051305CrossRefADS
Zurück zum Zitat Derec C, Ducouret C, Ajdari A, Lequeux F (2003) Aging and nonlinear rheology in suspensions of peo-protected silica particles. Phys Rev E 657:061403CrossRefADS Derec C, Ducouret C, Ajdari A, Lequeux F (2003) Aging and nonlinear rheology in suspensions of peo-protected silica particles. Phys Rev E 657:061403CrossRefADS
Zurück zum Zitat Dullaert K, Mewis J (2006) A structural kinetics model for thixotropy. J Non-Newton Fluid Mech 139:21–30CrossRef Dullaert K, Mewis J (2006) A structural kinetics model for thixotropy. J Non-Newton Fluid Mech 139:21–30CrossRef
Zurück zum Zitat Ewoldt RH, Clasen C, Hosoi AE, McKinley Gareth H (2006) Rheological fingerprinting of gastropod pedal mucus and bioinspired complex fluids for adhesive locomotion. Soft Matter 3:634–643CrossRef Ewoldt RH, Clasen C, Hosoi AE, McKinley Gareth H (2006) Rheological fingerprinting of gastropod pedal mucus and bioinspired complex fluids for adhesive locomotion. Soft Matter 3:634–643CrossRef
Zurück zum Zitat Ewoldt RH, Hosoi AE, McKinley Gareth H (2007) Rheological fingerprinting of complex fluids using large amplitude oscillatory shear (laos) flow. Annu Trans Nord Rheol Soc 15:3–8 Ewoldt RH, Hosoi AE, McKinley Gareth H (2007) Rheological fingerprinting of complex fluids using large amplitude oscillatory shear (laos) flow. Annu Trans Nord Rheol Soc 15:3–8
Zurück zum Zitat Frigaard I, Nouar C (2005) On the usage of viscosity regularisation methods for visco-plastic fluid flow computation. J Non-Newton Fluid Mech 127(1):1–26CrossRef Frigaard I, Nouar C (2005) On the usage of viscosity regularisation methods for visco-plastic fluid flow computation. J Non-Newton Fluid Mech 127(1):1–26CrossRef
Zurück zum Zitat Goveas GL, Olmsted PD (2001) A minimal model for vorticity and gradient banding in complex fluids. Eur Phys J E 6:79–89CrossRef Goveas GL, Olmsted PD (2001) A minimal model for vorticity and gradient banding in complex fluids. Eur Phys J E 6:79–89CrossRef
Zurück zum Zitat Heymann L, Aksel N (2007) Transition pathways between solid and liquid state in suspensions. Phys Rev E 75(2):021505–9CrossRefADS Heymann L, Aksel N (2007) Transition pathways between solid and liquid state in suspensions. Phys Rev E 75(2):021505–9CrossRefADS
Zurück zum Zitat İşçi S, Ünlü CH, Atici ONG (2006) Rheology and structure of aqueous bentonite-polyvinyl alcohol. Bull Mater Sci 29(5):449–456CrossRef İşçi S, Ünlü CH, Atici ONG (2006) Rheology and structure of aqueous bentonite-polyvinyl alcohol. Bull Mater Sci 29(5):449–456CrossRef
Zurück zum Zitat Kim J-Y, Song J-Y, Lee E-J, Park S-K (2003) Rheological propertoies and microstructures of carbopol gel network system. Colloid Polym Sci 281:614–623CrossRef Kim J-Y, Song J-Y, Lee E-J, Park S-K (2003) Rheological propertoies and microstructures of carbopol gel network system. Colloid Polym Sci 281:614–623CrossRef
Zurück zum Zitat Lifshitz EM, Landau LD (1984) Statistical physics, 3rd edn. Butterworth-Heinemann, Oxford Lifshitz EM, Landau LD (1984) Statistical physics, 3rd edn. Butterworth-Heinemann, Oxford
Zurück zum Zitat Love AE (1927) Treatise on the mathematical theory of elasticity. Dover, New YorkMATH Love AE (1927) Treatise on the mathematical theory of elasticity. Dover, New YorkMATH
Zurück zum Zitat Mahaut F, Chateau X, Coussot P, Ovarlez G (2008) Yield stress and elastic modulus of suspensions of noncolloidal particles in yield stress fluids. J Rheol 52(1):287–313CrossRefADS Mahaut F, Chateau X, Coussot P, Ovarlez G (2008) Yield stress and elastic modulus of suspensions of noncolloidal particles in yield stress fluids. J Rheol 52(1):287–313CrossRefADS
Zurück zum Zitat Möller Peder CF, Mewis J, Bonn D (2006) Yield stress and thixotropy: on the difficulty of measuring yield stress in practice. Soft Mater 2:274–283CrossRef Möller Peder CF, Mewis J, Bonn D (2006) Yield stress and thixotropy: on the difficulty of measuring yield stress in practice. Soft Mater 2:274–283CrossRef
Zurück zum Zitat Mujumdar A, Beris AN, Metzner AB (2002) Transient phenomena in thixotropic systems. J Non-Newton Fluid Mech 102(2):157–178MATHCrossRef Mujumdar A, Beris AN, Metzner AB (2002) Transient phenomena in thixotropic systems. J Non-Newton Fluid Mech 102(2):157–178MATHCrossRef
Zurück zum Zitat Oppong FK, de Bruyn JR (2007) Diffusion of microscopic tracer particles in a yield-stress fluid. J Non-Newton Fluid Mech 142:104–111MATHCrossRef Oppong FK, de Bruyn JR (2007) Diffusion of microscopic tracer particles in a yield-stress fluid. J Non-Newton Fluid Mech 142:104–111MATHCrossRef
Zurück zum Zitat Oppong FK, Rubatat L, Frisken BJ, Bailey AE, de Bruyn JR (2006) Microrheology and structure of a yield-stress polymer gel. Phys Rev E 73:041405CrossRefADS Oppong FK, Rubatat L, Frisken BJ, Bailey AE, de Bruyn JR (2006) Microrheology and structure of a yield-stress polymer gel. Phys Rev E 73:041405CrossRefADS
Zurück zum Zitat Piau JM (2007) Carbopol gels: elastoviscoplastic and slippery glasses made of individual swollen sponges .meso- and macroscopic properties, constitutive equations and scaling laws. J Non-Newton Fluid Mech 144:1–29CrossRef Piau JM (2007) Carbopol gels: elastoviscoplastic and slippery glasses made of individual swollen sponges .meso- and macroscopic properties, constitutive equations and scaling laws. J Non-Newton Fluid Mech 144:1–29CrossRef
Zurück zum Zitat Pipkin AC (1972) Lectures on viscoelasticity theory. Springer, Berlin Heidelberg New YorkMATH Pipkin AC (1972) Lectures on viscoelasticity theory. Springer, Berlin Heidelberg New YorkMATH
Zurück zum Zitat Putz AMV, Burghelea TI, Frigaard IA, Martinez DM (2008) Settling of an isolated spherical particle in a yield stress shear thinning fluid. Phys Fluids 20:033102CrossRefADS Putz AMV, Burghelea TI, Frigaard IA, Martinez DM (2008) Settling of an isolated spherical particle in a yield stress shear thinning fluid. Phys Fluids 20:033102CrossRefADS
Zurück zum Zitat Quemada D (1998a) Rheological modeling of complex fluids: III: dilatant behaviour of stabilized suspensions. Eur Phys J Appl 3:309–320CrossRefADS Quemada D (1998a) Rheological modeling of complex fluids: III: dilatant behaviour of stabilized suspensions. Eur Phys J Appl 3:309–320CrossRefADS
Zurück zum Zitat Quemada D (1998b) Rheological modeling of complex fluids: I: the concept of effective volume fraction revisited. Eur Phys J Appl 1:119–127CrossRefADS Quemada D (1998b) Rheological modeling of complex fluids: I: the concept of effective volume fraction revisited. Eur Phys J Appl 1:119–127CrossRefADS
Zurück zum Zitat Quemada D (1999) Rheological modeling of complex fluids: IV: thixotropic and “thixoelastic” behaviour. Start-up and stress relaxation, creep tests and hysteresis cycles. Eur Phys J Appl 5:191–207CrossRefADS Quemada D (1999) Rheological modeling of complex fluids: IV: thixotropic and “thixoelastic” behaviour. Start-up and stress relaxation, creep tests and hysteresis cycles. Eur Phys J Appl 5:191–207CrossRefADS
Zurück zum Zitat Roussel N, Le Roy R, Coussot P (2004) Thixotropy modelling at local and macrsocopic scales. J Non-Newton Fluid Mech 117(2–3):85–95MATHCrossRef Roussel N, Le Roy R, Coussot P (2004) Thixotropy modelling at local and macrsocopic scales. J Non-Newton Fluid Mech 117(2–3):85–95MATHCrossRef
Zurück zum Zitat Sollich P (1998) Rheological constitutive equation for a model of soft glassy materials. Phys Rev E 58(1):738CrossRefADS Sollich P (1998) Rheological constitutive equation for a model of soft glassy materials. Phys Rev E 58(1):738CrossRefADS
Zurück zum Zitat Sollich P, Lequeux F, Hébraud P, Cates ME (1997) Rheology of soft glassy materials. Phys Rev Lett 78(10):0031–9007CrossRef Sollich P, Lequeux F, Hébraud P, Cates ME (1997) Rheology of soft glassy materials. Phys Rev Lett 78(10):0031–9007CrossRef
Zurück zum Zitat Tanner RI (1985) Engineering Rheology. Number 14 in Oxford Engineering Science Series. Oxford Science Publications, Oxford Tanner RI (1985) Engineering Rheology. Number 14 in Oxford Engineering Science Series. Oxford Science Publications, Oxford
Zurück zum Zitat Tiu C, Guo G, Uhlherr PHT (2006) Yielding behavior of viscplastic materials. J Ind Eng Chem 12(5):653–662 Tiu C, Guo G, Uhlherr PHT (2006) Yielding behavior of viscplastic materials. J Ind Eng Chem 12(5):653–662
Zurück zum Zitat Tropea C, Yarin AL, Foss JS (2007) Handbook of experimental fluid dynamics. Springer, Berlin Heidelberg New York Tropea C, Yarin AL, Foss JS (2007) Handbook of experimental fluid dynamics. Springer, Berlin Heidelberg New York
Zurück zum Zitat Uhlherr PHT, Guo J, Tiu C, Zhang XM, Zhou JZQ, Fang TN (2005) The shear-induced solid–liquid transition in yield stress materials with chemically different structures. J Non-Newton Fluid Mech 125:101–119CrossRef Uhlherr PHT, Guo J, Tiu C, Zhang XM, Zhou JZQ, Fang TN (2005) The shear-induced solid–liquid transition in yield stress materials with chemically different structures. J Non-Newton Fluid Mech 125:101–119CrossRef
Metadaten
Titel
The solid–fluid transition in a yield stress shear thinning physical gel
verfasst von
Andreas M. V. Putz
Teodor I. Burghelea
Publikationsdatum
01.07.2009
Verlag
Springer-Verlag
Erschienen in
Rheologica Acta / Ausgabe 6/2009
Print ISSN: 0035-4511
Elektronische ISSN: 1435-1528
DOI
https://doi.org/10.1007/s00397-009-0365-9

Weitere Artikel der Ausgabe 6/2009

Rheologica Acta 6/2009 Zur Ausgabe

    Marktübersichten

    Die im Laufe eines Jahres in der „adhäsion“ veröffentlichten Marktübersichten helfen Anwendern verschiedenster Branchen, sich einen gezielten Überblick über Lieferantenangebote zu verschaffen.