Obstructed swelling and fracture of hydrogels

Fuente: arXiv
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Auteurs principaux: Plummer, Abigail, Adkins, Caroline, Louf, Jean-François, Košmrlj, Andrej, Datta, Sujit S.
Format: Preprint
Publié: 2023
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author Plummer, Abigail
Adkins, Caroline
Louf, Jean-François
Košmrlj, Andrej
Datta, Sujit S.
author_facet Plummer, Abigail
Adkins, Caroline
Louf, Jean-François
Košmrlj, Andrej
Datta, Sujit S.
contents Obstructions influence the growth and expansion of bodies in a wide range of settings -- but isolating and understanding their impact can be difficult in complex environments. Here, we study obstructed growth/expansion in a model system accessible to experiments, simulations, and theory: hydrogels swelling around fixed cylindrical obstacles with varying geometries. When the obstacles are large and widely-spaced, hydrogels swell around them and remain intact. In contrast, our experiments reveal that when the obstacles are narrow and closely-spaced, hydrogels fracture as they swell. We use finite element simulations to map the magnitude and spatial distribution of stresses that build up during swelling at equilibrium in a 2D model, providing a route toward predicting when this phenomenon of self-fracturing is likely to arise. Applying lessons from indentation theory, poroelasticity, and nonlinear continuum mechanics, we also develop a theoretical framework for understanding how the maximum principal tensile and compressive stresses that develop during swelling are controlled by obstacle geometry and material parameters. These results thus help to shed light on the mechanical principles underlying growth/expansion in environments with obstructions.
format Preprint
id arxiv_https___arxiv_org_abs_2307_11827
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Obstructed swelling and fracture of hydrogels
Plummer, Abigail
Adkins, Caroline
Louf, Jean-François
Košmrlj, Andrej
Datta, Sujit S.
Soft Condensed Matter
Obstructions influence the growth and expansion of bodies in a wide range of settings -- but isolating and understanding their impact can be difficult in complex environments. Here, we study obstructed growth/expansion in a model system accessible to experiments, simulations, and theory: hydrogels swelling around fixed cylindrical obstacles with varying geometries. When the obstacles are large and widely-spaced, hydrogels swell around them and remain intact. In contrast, our experiments reveal that when the obstacles are narrow and closely-spaced, hydrogels fracture as they swell. We use finite element simulations to map the magnitude and spatial distribution of stresses that build up during swelling at equilibrium in a 2D model, providing a route toward predicting when this phenomenon of self-fracturing is likely to arise. Applying lessons from indentation theory, poroelasticity, and nonlinear continuum mechanics, we also develop a theoretical framework for understanding how the maximum principal tensile and compressive stresses that develop during swelling are controlled by obstacle geometry and material parameters. These results thus help to shed light on the mechanical principles underlying growth/expansion in environments with obstructions.
title Obstructed swelling and fracture of hydrogels
topic Soft Condensed Matter
url https://arxiv.org/abs/2307.11827