Transient shear banding in entangled polymers: a study using the Rolie-Poly model
arXiv:1011.4355 · doi:10.1122/1.3610169
Abstract
Spatially inhomogeneous shear flow occurs in entangled polymer solutions, both as steady state shear banding and transiently after a large step strain or during start up to a steady uniform shear rate. Steady state shear banding is a hallmark of models with a non-monotonic constitutive relation between total shear stress and applied shear rate, but transient banding is sometimes seen in fluids that do not shear band at steady state. We model this behavior using the diffusive Rolie-Poly model in a Newtonian solvent, whose constitutive behavior can be monotonic or non-monotonic depending on the degree of convected constraint release (CCR). We study monotonic constitutive behaviour. Linear stability analysis of start up to a sufficiently high shear rate shows that spatial fluctuations are unstable at early times. There is a strong correlation between this instability and the negative slope of the (time dependent) constitutive curve. If the time integral of the most unstable eigenvalue is sufficiently large then the system exhibits transient shear bands that later vanish in steady state. We show how perturbations, due to fluctuations or the inhomogeneous stresses, can trigger this instability. This transient behavior is similar to recent observations in entangled polymer solutions
16 pages, 11 figures, revised version submitted to Journal of Rheology
References in corpus (10)
- Rheology of giant micelles
- Transient Shear Banding in a Simple Yield Stress Fluid
- Strain localization in a shear transformation zone model for amorphous solids
- A non-monotonic constitutive model is not necessary to obtain shear banding phenomena in entangled polymer solutions
- Age-dependent transient shear banding in soft glasses
- Rate dependent shear bands in a shear transformation zone model of amorphous solids
- Kinetics of the shear banding instability in startup flows
- The interplay between boundary conditions and flow geometries in shear banding: hysteresis, band configurations, and surface transitions
- Adams and Olmsted Reply to comment on article "A non-monotonic constitutive model is not necessary to obtain shear banding phenomena in entangled polymer solution" [Phys. Rev. Lett. 102, 067801 (2009), arXiv:0805.0679]
- Towards a modeling of the time dependence of contact area between solid bodies
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- Perspectives on the viscoelasticity and flow behavior of entangled linear and branched polymers
- Triggers and signatures of shear banding in steady and time-dependent flows
- Apparent Fracture in Polymeric Fluids under Step Shear
- Yielding, shear banding and brittle failure of amorphous materials
- Emergence and persistence of flow inhomogeneities in the yielding and fluidization of dense soft solids
- A computational study of transient shear banding in soft jammed solids
- Edge-induced shear banding in entangled polymeric fluids
- Shear banding in large amplitude oscillatory shear (LAOStrain and LAOStress) of polymers and wormlike micelles
- Transient Shear Banding in Time-dependent Fluids
- On diffusive variants of some classical viscoelastic rate-type models
- Entanglement kinetics in polymer melts are chemically specific
- Role of Micellar Entanglement Density on Kinetics of Shear Banding Flow Formation
- A two species micro-macro model of wormlike micellar solutions and its maximum entropy closure approximations: An energetic variational approach
- Start-up inertia as an origin for heterogeneous flow
- Transient shear banding in the nematic dumbbell model of liquid crystalline polymers
- A singular perturbation study of the Rolie-Poly model
- Onset of transient shear banding in viscoelastic shear start-up flows: Implications from linearized dynamics