WALL SLIP IN POLYMER MELTS - A PSEUDO-CHEMICAL MODEL

Authors
Citation
Da. Hill, WALL SLIP IN POLYMER MELTS - A PSEUDO-CHEMICAL MODEL, Journal of rheology, 42(3), 1998, pp. 581-601
Citations number
38
Categorie Soggetti
Mechanics
Journal title
ISSN journal
01486055
Volume
42
Issue
3
Year of publication
1998
Pages
581 - 601
Database
ISI
SICI code
0148-6055(1998)42:3<581:WSIPM->2.0.ZU;2-U
Abstract
A chemical-type theory for wall slip in polymer melts is developed by modeling the exchange of bridging sites between two opposing polymeric and solid surfaces. Kinetic equations, describing surface coverage by bridging monomers, are formulated and analyzed to evaluate the stabil ity of adhesive contact and slip characteristics of the viscoelastic m elt. Order of magnitude estimates of the kinetic coefficients suggest that the polymer-solid interface is always at equilibrium, even under slip. The model displays the following features. The polymer slips at all stresses; the slip velocity, v(s), obeys time-free volume superpos ition and depends on both sheer and normal stresses. At small stresses , v(s) is linear in shear stress and proportional to a function of the work of adhesion; the slip parameter b (the slip extrapolation length scale) takes on the same form as that proposed by de Gennes, but disp lays an additional dependence on adhesive energy. At constant v(s) the shear stress is proportional to the adhesive free energy. A catastrop hic loss of adhesion occurs at a critical stress that depends on the d ifference between the work of adhesion (polymer-solid) and the work of cohesion (polymer-polymer). Predictions compare favorably with litera ture data for slip of linear low-density polyethylene on metal. (C) 19 98 The Society of Rheology.