Relaxation in Polymer Networks under Uniaxial Extension and Biaxial Compression

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Main Authors: Kraus, Volker, Hamm, Wolfgang, Zrinyi, Miklos
Format: Preprint
Published: 2025
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author Kraus, Volker
Hamm, Wolfgang
Zrinyi, Miklos
author_facet Kraus, Volker
Hamm, Wolfgang
Zrinyi, Miklos
contents Predicting the time and temperature dependent behavior of polymer networks under complex loading is essential for the design of advanced elastomeric materials. Many practical applications involve combinations of deformation modes, such as uniaxial extension and biaxial compression, yet a unified description of their mechanical response remains challenging. In this study, we apply a consistent theoretical framework to describe both uniaxial and biaxial deformation modes, using the same constitutive formalism based on van der Waals network theory. The time dependence of the material response in both cases is governed by a substance specific relaxation spectrum, introduced through irreversible thermodynamics as a linear coupling to the quasi static reference state of the permanent network. The temperature dependence of the relaxation times is well described by the Williams Landel Ferry (WLF) equation in the high temperature or low strain rate regime, demonstrating that the same physical mechanisms underlie time dependent behavior across different loading geometries. Experimental results are presented for cross linked poly(methyl methacrylate) (PMMA) and polyvinyl acetate (PVAc), validating the theoretical model across both materials and deformation modes.
format Preprint
id arxiv_https___arxiv_org_abs_2512_10490
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Relaxation in Polymer Networks under Uniaxial Extension and Biaxial Compression
Kraus, Volker
Hamm, Wolfgang
Zrinyi, Miklos
Soft Condensed Matter
Predicting the time and temperature dependent behavior of polymer networks under complex loading is essential for the design of advanced elastomeric materials. Many practical applications involve combinations of deformation modes, such as uniaxial extension and biaxial compression, yet a unified description of their mechanical response remains challenging. In this study, we apply a consistent theoretical framework to describe both uniaxial and biaxial deformation modes, using the same constitutive formalism based on van der Waals network theory. The time dependence of the material response in both cases is governed by a substance specific relaxation spectrum, introduced through irreversible thermodynamics as a linear coupling to the quasi static reference state of the permanent network. The temperature dependence of the relaxation times is well described by the Williams Landel Ferry (WLF) equation in the high temperature or low strain rate regime, demonstrating that the same physical mechanisms underlie time dependent behavior across different loading geometries. Experimental results are presented for cross linked poly(methyl methacrylate) (PMMA) and polyvinyl acetate (PVAc), validating the theoretical model across both materials and deformation modes.
title Relaxation in Polymer Networks under Uniaxial Extension and Biaxial Compression
topic Soft Condensed Matter
url https://arxiv.org/abs/2512.10490