Rs. Anderssen et Dw. Mead, THEORETICAL DERIVATION OF MOLECULAR-WEIGHT SCALING FOR RHEOLOGICAL PARAMETERS, Journal of non-Newtonian fluid mechanics, 76(1-3), 1998, pp. 299-306
Recently, a method has been established to determine moments (function
als) of the molecular weight distribution (MWD) of a given polymer dir
ectly from measurements of the linear viscoelastic relaxation modulus
of that polymer. In part, the need to compute such quantities (functio
nals) is motivated by the experimentally observed scaling of rheologic
al properties of polymers with respect to moments of their MWD. Althou
gh various authors have advanced different ad hoc arguments to derive
various molecular weight scaling results for a variety of rheological
parameters, such as the zero-shear viscosity, no formal procedure for
deriving molecular weight scaling for rheological parameters has been
proposed. In this paper, a natural parametric generalization of the re
ptation based mixing rules is introduced which includes single and dou
ble reptation as special cases. For this generalization, it is shown,
by invoking the mean value theorem for integrals, how to formalize the
derivation of molecular weight scaling for rheological parameters. In
particular, from the point of view of choosing practical mixing rules
, this paper establishes that when the relaxation function is characte
rized by a single time constant, the molecular weight scaling is indep
endent of the standard linear mixing rules. (C) 1998 Elsevier Science
B.V. All rights reserved.