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Theoretical Model of Polymer Network Chain Formation under Strain
Author(s) -
Yong Yu,
Shunping Yan,
Fang Ye,
Qinshu He,
Huyi Wang,
Yong Qiu,
Qiang Wan
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b01748
Subject(s) - chain scission , polymer network , network formation , chain (unit) , chain reaction , elastomer , polymer , materials science , network model , deformation (meteorology) , chemistry , polymer chemistry , polymer science , computer science , physics , composite material , photochemistry , astronomy , world wide web , database
In this article, the polymer network chain formation through cross-linking and scission under n strain stages is studied based on the thermal fluctuation principle. The aim is to clarify the effects of chemical reactions, especially the network chain cross-linking, dangling chain cross-linking, cross-link scission, and network chain scission, on the free energy of network chain to generalize the classical two-network model. In our model, the free energy change for a chain formation is associated with the reaction sequences, except network chain cross-linking or cross-link scission reactions under the same strain stage. A new constitutive expression for network chain formed under two strain stages is derived according to affine deformation theory in which independent network hypothesis and stress-transfer function are not required. Comparison between our model and previous experimental data about recovered stretch ratio of γ-irradiated silicone elastomer validates that our model can give more precise result than previous two-network model.

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