Modeling elongational viscosity and brittle fracture of polystyrene solutions

Wagner, Manfred H.;Narimissa, Esmaeil;Poh, Leslie;Shahid, Taisir
(2021) Rheologica Acta : an international journal of rheology — Vol. 60, n° 8, p. 385-396 (2021)

Files

Wagner2021_Article_ModelingElongationalViscosityA.pdf
  • Open Access
  • Adobe PDF
  • 1.4 MB

Details

Authors
  • Wagner, Manfred H.orcid-logoTU Berlin
    Author
  • Narimissa, EsmaeilIIT
    Author
  • Poh, LeslieIIT
    Author
  • Shahid, TaisirUCLouvain
    Author
Abstract
Elongational viscosity data of well-characterized solutions of 3–50% weight fraction of monodisperse polystyrene PS-820k (molar mass of 820,000 g/mol) dissolved in oligomeric styrene OS8.8 (molar mass of 8800 g/mol) as reported by André et al. (Macromolecules 54:2797–2810, 2021) are analyzed by the Extended Interchain Pressure (EIP) model including the effects of finite chain extensibility. Excellent agreement between experimental data and model predictions is obtained, based exclusively on the linear-viscoelastic characterization of the polymer solutions. The data were obtained by a filament stretching rheometer, and at high strain rates and lower polymer concentrations, the stretched filaments fail by rupture before reaching the steady-state elongational viscosity. Filament rupture is predicted by a criterion for brittle fracture of entangled polymer liquids, which assumes that fracture is caused by scission of primary C-C bonds of polymer chains when the strain energy reaches the bond-dissociation energy of the covalent bond (Wagner et al., J. Rheology 65:311–324, 2021).
Affiliations

Citations

Wagner, M. H., Narimissa, E., Poh, L., & Shahid, T. (2021). Modeling elongational viscosity and brittle fracture of polystyrene solutions. Rheologica Acta : an international journal of rheology, 60(8), 385-396. https://doi.org/10.1007/s00397-021-01277-1 (Original work published 2021)