Viscoelasticity in shearing and accelerative flows: A simplified integral theory
- 1 January 1970
- journal article
- research article
- Published by Wiley in AIChE Journal
- Vol. 16 (1) , 53-57
- https://doi.org/10.1002/aic.690160112
Abstract
An explicit, four‐constant model for viscosity and normal stresses in simple shear has been developed by simplifying the integral theory of Bernstein, Kearsley, and Zapas. In essence the procedure involves curve‐fitting the linear relaxation spectrum. The four constants appear also in equations for the stress distribution and for pressure drop in accelerative flow between flat plates; flow along rays is assumed. The equations reduce to second‐order theory and to Newtonian theory as a Deborah number becomes small. Comparison of the predicted stress distributions with previously published stress birefringent data shows good agreement; because of the low shear rates, however, the check is not demonstrating very strong departures from the second‐order asymptote. Certain other theoretical results, including pressure drop predictions, are also noted.Keywords
This publication has 13 references indexed in Scilit:
- Stress-Birefringent Patterns of a Viscoelastic Fluid at a Sharp-Edged EntranceTransactions of the Society of Rheology, 1968
- Viscoelastic behavior under large deformationsJournal of Research of the National Bureau of Standards Section A: Physics and Chemistry, 1966
- Constitutive equations for viscoelastic fluids for short deformation periods and for rapidly changing flows: Significance of the deborah numberAIChE Journal, 1966
- Comparison of Constitutive Equations for Viscoelastic FluidsIndustrial & Engineering Chemistry Fundamentals, 1966
- An Experimental Appraisal of Viscoelastic ModelsTransactions of the Society of Rheology, 1966
- Correlation of large longitudinal deformations with different strain historiesJournal of Research of the National Bureau of Standards Section A: Physics and Chemistry, 1965
- Stresses in a viscoelastic fluid in coverging and diverging flowAIChE Journal, 1965
- Elastic Stress-Strain Relations in Perfect Elastic FluidsTransactions of the Society of Rheology, 1965
- Thermodynamics of perfect elastic fluidsJournal of Research of the National Bureau of Standards Section B Mathematics and Mathematical Physics, 1964
- Properties and Structure of PolymersJournal of the Electrochemical Society, 1960