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Bubble Dynamics Transformer: Microrheology at Ultra-High Strain Rates

Bubble Dynamics Transformer: Microrheology at Ultra-High Strain Rates

来源:Arxiv_logoArxiv
英文摘要

Laser-induced inertial cavitation (LIC)-where microscale vapor bubbles nucleate due to a focused high-energy pulsed laser and then violently collapse under surrounding high local pressures-offers a unique opportunity to investigate soft biological material mechanics at extremely high strain rates (>1000 1/s). Traditional rheological tools are often limited in these regimes by loading speed, resolution, or invasiveness. Here we introduce novel machine learning (ML) based microrheological frameworks that leverage LIC to characterize the viscoelastic properties of biological materials at ultra-high strain rates. We utilize ultra-high-speed imaging to capture time-resolved bubble radius dynamics during LIC events in various soft viscoelastic materials. These bubble radius versus time measurements are then analyzed using a newly developed Bubble Dynamics Transformer (BDT), a neural network trained on physics-based simulation data. The BDT accurately infers material viscoelastic parameters, eliminating the need for iterative fitting or complex inversion processes. This enables fast, accurate, and non-contact characterization of soft materials under extreme loading conditions, with significant implications for biomedical applications and materials science.

Lehu Bu、Zhaohan Yu、Shaoting Lin、Jan N. Fuhg、Jin Yang

生物科学研究方法、生物科学研究技术医学研究方法基础医学

Lehu Bu,Zhaohan Yu,Shaoting Lin,Jan N. Fuhg,Jin Yang.Bubble Dynamics Transformer: Microrheology at Ultra-High Strain Rates[EB/OL].(2025-06-13)[2025-06-22].https://arxiv.org/abs/2506.11936.点此复制

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