Title of article
Application of an interpenetrating network model to the solid deformation of a quenched isotactic polypropylene film
Author/Authors
Song، نويسنده , , Yihu and Nemoto، نويسنده , , Norio، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2005
Pages
9
From page
6522
To page
6530
Abstract
The molecular orientation and deformation mechanisms of a quenched isotactic polypropylene (iPP) film deformed at temperatures between 303 K and the melting point are studied. At draw temperature TE less than 400 K where the degree of crystallinity does not change markedly, a linear relationship between molecular orientations of the crystalline and the amorphous phases is revealed and the slope is estimated about 1.82. The interpenetrating network (IPN) model, that takes into account the plastic response of the crystalline (C) network formed by a small portion of crystallites adhered through intercrystalline links and the pseudo-affine deformation of the crystallite enhanced amorphous matrix (CEAM) network, is able to account for inhomogeneous deformation behavior on the mesoscale accompanied with the localized necking in this TE range. Meanwhile, the initial Youngʹs modulus and the true yield stress exerted by the deformation of the rigid C network exhibit the Arrhenius type of dependence on TE. The apparent shear modulus of the CEAM network as a function of TE is discussed in relation to variations in numbers and average molecular weights of the crystalline and the amorphous sequences being manifested by small consecutive endothermic and exothermic peaks in the DSC curve. The IPN model becomes invalid for deformations above TE=400 K where morphological changes are induced due to melting of crystallites as proved from the DSC measurement.
Keywords
Interpenetrating network model , Deformation , Polypropylene
Journal title
Polymer
Serial Year
2005
Journal title
Polymer
Record number
1723220
Link To Document