Damage of Cross-Linked Rubbers as the Scission of Polymer Chains: Modeling and Tensile Experiments, Report 1
Alexei Y. Melnikov, A.I. Leonov

TL;DR
This paper introduces a damage model for cross-linked rubbers based on polymer chain scission, combining molecular-level concepts with macroscopic elastic behavior, validated through tensile experiments.
Contribution
It presents a novel damage model linking molecular chain scission to macroscopic rubber failure, enabling prediction of mechanical de-vulcanization.
Findings
Model accurately predicts rubber failure under tensile stress.
Qualitative analysis links molecular parameters to damage evolution.
Experimental validation confirms model effectiveness.
Abstract
This paper develops a damage model for unfilled cross-linked rubbers based on the concept of scission of polymer chains. The model is built up on the well-known Gent elastic potential complemented by a kinetic equation describing effects of polymer chain scission. The macroscopic parameters in the damage model are evaluated through the parameters for undamaged elastomer. Qualitative analysis of changing molecular parameters of rubbers under scission of polymer chains resulted in easy scaling modeling the dependences of these parameters on the damage factor. It makes possible to predict the rubber failure in molecular terms as mechanical de-vulcanization. The model was tested in tensile quasi-static experiments with both the monotonous loading and repeated loading-unloading.
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Taxonomy
TopicsElasticity and Material Modeling · Polymer Nanocomposites and Properties · Rheology and Fluid Dynamics Studies
