Microbubble surface instabilities in a strain stiffening viscoelastic material

Fuente: arXiv
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Hauptverfasser: Remillard, Sawyer, Abeid, Bachir A., Hall, Timothy L., Sukovich, Jonathan R., Baker, Jacob, Yang, Jin, Estrada, Jonathan B., Rodriguez Jr, Mauro
Format: Preprint
Veröffentlicht: 2026
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author Remillard, Sawyer
Abeid, Bachir A.
Hall, Timothy L.
Sukovich, Jonathan R.
Baker, Jacob
Yang, Jin
Estrada, Jonathan B.
Rodriguez Jr, Mauro
author_facet Remillard, Sawyer
Abeid, Bachir A.
Hall, Timothy L.
Sukovich, Jonathan R.
Baker, Jacob
Yang, Jin
Estrada, Jonathan B.
Rodriguez Jr, Mauro
contents Understanding the dynamics of instabilities along fluid-solid interfaces is critical for the efficacy of focused ultrasound therapy tools (e.g., histotripsy) and microcavitation rheometry techniques. Non-uniform pressure fields generated by either ultrasound or a focused laser can cause non-spherical microcavitation bubbles. Previous perturbation amplitude evolution models in viscoelastic materials either assume pure radial deformation or have inconsistent kinematic fields between the fluid and solid contributions. We derive a kinematically-consistent theoretical model for the evolution of surface perturbations. The model captures the non-linear kinematics of a strain-stiffening viscoelastic material surrounding a non-spherical bubble. The model is validated for (i) small, approximately linear radial oscillations and (ii) large inertial oscillations using laser-induced microcavitation experiments in a soft hydrogel. For the former, the bubble is allowed to reach mechanical equilibrium, and then surface perturbations are excited using ultrasound forcing. For the latter, the microbubble forms small bubble surface perturbations at its maximum radius that grow during collapse. The model's dominant surface perturbation mode scales linearly with equilibrium radius and matches experiments. Similarly, the model's perturbation amplitude evolution sufficiently constrains the rheometry problem and is experimentally validated.
format Preprint
id arxiv_https___arxiv_org_abs_2601_04113
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Microbubble surface instabilities in a strain stiffening viscoelastic material
Remillard, Sawyer
Abeid, Bachir A.
Hall, Timothy L.
Sukovich, Jonathan R.
Baker, Jacob
Yang, Jin
Estrada, Jonathan B.
Rodriguez Jr, Mauro
Fluid Dynamics
Understanding the dynamics of instabilities along fluid-solid interfaces is critical for the efficacy of focused ultrasound therapy tools (e.g., histotripsy) and microcavitation rheometry techniques. Non-uniform pressure fields generated by either ultrasound or a focused laser can cause non-spherical microcavitation bubbles. Previous perturbation amplitude evolution models in viscoelastic materials either assume pure radial deformation or have inconsistent kinematic fields between the fluid and solid contributions. We derive a kinematically-consistent theoretical model for the evolution of surface perturbations. The model captures the non-linear kinematics of a strain-stiffening viscoelastic material surrounding a non-spherical bubble. The model is validated for (i) small, approximately linear radial oscillations and (ii) large inertial oscillations using laser-induced microcavitation experiments in a soft hydrogel. For the former, the bubble is allowed to reach mechanical equilibrium, and then surface perturbations are excited using ultrasound forcing. For the latter, the microbubble forms small bubble surface perturbations at its maximum radius that grow during collapse. The model's dominant surface perturbation mode scales linearly with equilibrium radius and matches experiments. Similarly, the model's perturbation amplitude evolution sufficiently constrains the rheometry problem and is experimentally validated.
title Microbubble surface instabilities in a strain stiffening viscoelastic material
topic Fluid Dynamics
url https://arxiv.org/abs/2601.04113