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超声驱动气泡与软组织样边界的相互作用。

Interaction of ultrasonically driven bubble with a soft tissue-like boundary.

作者信息

Bulycheva Victoria, Kolios Michael C, Karshafian Raffi

机构信息

Department of Physics, Toronto Metropolitan University, Toronto, Ontario M5B 2K3, Canada; Institute for Biomedical Engineering, Science and Technology (iBEST), A Partnership Between Toronto Metropolitan University and St. Michael's Hospital, 209 Victoria Street, Toronto, Ontario M5B 1T8, Canada; Keenan Research Centre for Biomedical Science, Unity Health Toronto, 209 Victoria Street, Toronto, Ontario M5B 1W8, Canada.

Department of Physics, Toronto Metropolitan University, Toronto, Ontario M5B 2K3, Canada; Institute for Biomedical Engineering, Science and Technology (iBEST), A Partnership Between Toronto Metropolitan University and St. Michael's Hospital, 209 Victoria Street, Toronto, Ontario M5B 1T8, Canada; Keenan Research Centre for Biomedical Science, Unity Health Toronto, 209 Victoria Street, Toronto, Ontario M5B 1W8, Canada.

出版信息

Ultrasonics. 2024 Aug;142:107374. doi: 10.1016/j.ultras.2024.107374. Epub 2024 Jun 6.

Abstract

This study investigates the size-dependent dynamics of bubbles and their interaction with soft boundaries under various ultrasound (US) conditions. We found that bubble behavior is influenced by size, with smaller bubbles displaying reduced inertial motion in similar ultrasound environments. Detailed analyses of three bubble sizes (1.5 µm, 15 µm, and 150 µm) next to a soft 1 kPa boundary revealed distinct patterns in radial oscillation, bubble center displacement, and boundary deflection for different ultrasound frequencies (5 kHz - 4 MHz). The smallest bubble maintained a spherical shape, while the largest experienced significant shape changes, indicative of impending jet formation. Investigating interactions at various frequencies highlighted the collapse tendency of the larger bubbles, showcasing maximum radial amplitude, displacement, and bubble wall velocity around its natural frequency. The presence of a soft boundary minimally affected radial amplitude and velocity, while the bubble displacement was contingent on the soft boundary modulus. Furthermore, boundary responses demonstrated that softer boundaries experienced less stress during bubble oscillations, exhibiting sharper peaks at resonance frequencies for larger bubbles. These findings provide valuable insights into optimizing ultrasound conditions for a variety of applications, highlighting the influence of bubble size and boundary properties on outcomes.

摘要

本研究探讨了在各种超声(US)条件下气泡尺寸依赖的动力学及其与软边界的相互作用。我们发现气泡行为受尺寸影响,在相似的超声环境中,较小的气泡表现出较小的惯性运动。接下来,对靠近1 kPa软边界的三种气泡尺寸(1.5 µm、15 µm和150 µm)进行详细分析,结果显示在不同超声频率(5 kHz - 4 MHz)下,径向振荡、气泡中心位移和边界偏转呈现出不同的模式。最小的气泡保持球形,而最大的气泡经历了显著的形状变化,这表明即将形成射流。研究不同频率下的相互作用突出了较大气泡的坍塌趋势,在其固有频率附近展示出最大的径向振幅、位移和气泡壁速度。软边界的存在对径向振幅和速度影响最小,而气泡位移则取决于软边界模量。此外,边界响应表明,较软的边界在气泡振荡过程中承受的应力较小,对于较大的气泡在共振频率处表现出更尖锐的峰值。这些发现为优化各种应用的超声条件提供了有价值的见解,突出了气泡尺寸和边界特性对结果的影响。

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