Polymer Engineering and Science · 2002 · 28 citations · 37 references
EngineeringMechanical EngineeringLoss ModuliMechanics ModelingPolymersPolymer MaterialHeterogeneous Polymer BlendsPolymer ProcessingPolymer PhysicRheologyPolymer CompositesPercolation TheoryPolymer ChemistryMaterials SciencePolymer BlendPlasticityPolymer BlendsMechanical PropertiesPolymer SciencePolymer PropertyPolymer ModelingMechanics Of Materials
Abstract A previously proposed predictive format for elastic, storage and loss moduli is extended for the time‐dependent compliance D b ( t ) of polymer blends. The format employs a two‐parameter equivalent box model (EBM) and the data on the phase continuity of components in blends obtained by using modified general equations of the percolation theory. As input data, the compliances D 1 ( t ) and D 2 ( t ) and the critical volume fractions V 1 cr and V 2 cr (delimiting the interval of phase co‐continuity in blends) of components are sufficient. To describe the effect of time on D 1 ( t ), D 2 ( t ) and D b ( t ) within the linear stress‐strain region, a routinely used empirical equation was found suitable. Applicability of the proposed format is demonstrated on rubbertoughened polypropylene/poly(styrene‐ co ‐acrylonitrile) blends consisting of components with markedly different viscoelastic properties. The proposed predictive format fits fairly well the creep behavior of blends over the interval 0.1‐10,000 minutes.
37
On the viscosity‐concentration dependence of immiscible polymer blends
L. A. Utracki · Journal of Rheology · 1991 · 355 citations
Engineering, Soft Matter, Polymers +16
Reinforcement of crosslinked rubbery epoxies by in-situ formed silica
Libor Matějka · Polymer · 2000 · 180 citations
C. B. Bucknall, D. Clayton, Wendy E. Keast · Journal of Materials Science · 1972 · 155 citations