
doi: 10.1007/bf01503041
The “chemical” relaxation of stress either in Amilan (6-Nylon) or polyvinyl alcohol caused by penetration of water vapor was studied at 40% R. H. and temperatures 15, 30, and 50° C. A theory was presented of the chemical relaxation in a polymer which comprises penetrant-sensitive bonds as the crosslinkages between the molecular chains. This theory assumes the diffusion coefficient of penetrant in the polymer to he independent of concentration and any other factors. It was found that the system Amilan-water behaves in exact conformity with the theory over the ranges of elongation and temperature studied. The diffusion coefficient,D, of water in Amilan could thus be evaluated from the chemical relaxation data, using the theory presented, as functions of elongation and temperature. An ordinary sorption experiment was carried out for this system at 40% R. H. and 16.8° C and demonstrated that the diffusion of water in Amilan was Fickian with a constant diffusion coefficient. Both diffusion coefficients from the chemical relaxation data and the sorption. data were found to agree quite well when the former was extrapolated to zero-strain. The chemical relaxation behavior in the system polyvinyl alcohol-water was markedly different from that expected from the theory, suggesting primarily that the diffusion coefficient of water in this polymer was not constant. A parallel evidence for this fact was obtained from sorption measurements on this system, which demonstrated the diffusion in this system to be dependent both on concentration and time.
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