Mechanics and Modeling of Cold Rolling of Polymeric Films at Large Strains -- A Rate-Independent Approach
Nikhil Padhye

TL;DR
This paper develops and compares rate-independent elastic-plastic finite element models for cold rolling of polymeric films at large strains, demonstrating accurate predictions without complex hyperelastic models and highlighting elastic effects.
Contribution
It introduces a simplified, rate-independent modeling approach for polymeric film rolling, validated against experiments, and compares hypoelastic and multiplicative plasticity formulations.
Findings
Both modeling approaches match experimental rolling loads.
Classical rigid-plastic models underestimate loads due to elastic effects.
Hyperelastic/visco-plastic models are unnecessary for the studied conditions.
Abstract
We analyze plane strain cold rolling processes, at large strains but slow strain rates, by finite element modeling. At low temperatures, slow strain rates, and moderate thickness reductions during rolling (at which Bauschinger effect can be neglected for the particular class of polymeric films studied here), the task of material modeling is greatly simplified, and enables us to deploy a computationally efficient, yet accurate, finite deformation rate-independent elastic-plastic material behavior (with inclusion of isotropic-hardening). The finite deformation elastic-plastic material behavior based on (i) hypoelasticity, and ii) multiplicative plasticity, are programmed and carried out for cold rolling within Abaqus Explicit. Predictions from both the formulations, i.e., hypoelastic and multiplicative decomposition, exhibit a close match with the experimentally observed rolling loads. We…
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Taxonomy
TopicsMetal Forming Simulation Techniques · Powder Metallurgy Techniques and Materials · Metallurgy and Material Forming
