A Model for the Diffusion of Moisture in Adhesive Joints. Part I: Equations Governing Diffusion
- 1 January 1989
- journal article
- research article
- Published by Taylor & Francis in The Journal of Adhesion
- Vol. 27 (1) , 1-18
- https://doi.org/10.1080/00218468908050590
Abstract
A methodology is proposed to relate the diffusion coefficient of small penetrant molecules in polymers to temperature, strain, and penetrant concentration. The approach used is based on well-known free volume theories. It is assumed that the transport kinetics is governed by the constant redistribution of the free volume, caused by the segmental motions of the polymeric chains. An expression for the diffusion coefficient is inferred from the temperature, strain, and penetrant concentration dependence of the free volume. The stress dependence of solubility is predicted from the Hildebrand theory. It is shown that the resulting constitutive equations exhibit many features desirable for joint durability studies. Finally, a non-Fickian driving force arising from differential swelling is included in the governing equations.Keywords
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