Numerical analysis of ultrasound-mediated microbubble interactions in vascular systems: Effects on shear stress and vessel mechanics

IF 4.1 2区 工程技术 Q1 MECHANICS Physics of Fluids Pub Date : 2024-08-07 DOI:10.1063/5.0213656
Zeinab Heidary, Claus-Dieter Ohl, Afsaneh Mojra
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Abstract

The present study concerns the numerical modeling of microbubble oscillation within an elastic microvessel, aiming to enhance the safety and efficacy of ultrasound-mediated drug delivery and diagnostic imaging. The success of such applications depends on a thorough understanding of microbubble–vessel interactions. Despite some progress, the critical impact of the stabilizing shell around gas core has remained underexplored. To address this, we developed a novel numerical approach that models the stabilizing shell. Additionally, there is novelty in modeling consequent vascular deformation in response to complicated spatiotemporal microbubble oscillations. The novel approach was implemented for shear stress evaluation as a critical factor in vascular permeability. Finally, our unique approach offered novel insights into microbubble–vessel interactions under diverse acoustic conditions. Results indicated substantial impact of shell properties and acoustic parameters on induced shear stress. With a fourfold increase in acoustic pressure amplitude, 15.6-fold and sixfold increases were observed in maximum shear stress at 1 and 3 MHz, respectively. Also, the peak shear stress could reach up to 15.6 kPa for a shell elasticity of 0.2 N/m at 2.5 MHz. Furthermore, decreasing microvessel/bubble size ratio from 3 to 1.5 increased maximum shear stress from 5.1 to 24.3 kPa. These findings are crucial for optimizing ultrasound parameters in clinical applications, potentially improving treatment outcomes while minimizing risk of vessel damage. However, while our model demonstrated high fidelity in reproducing experimental observations, it is limited by assumptions of vessel geometry and homogeneity of vessel properties. Future work can improve our findings through in vitro experimental measurements.
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血管系统中超声波介导的微泡相互作用的数值分析:对剪切应力和血管力学的影响
本研究涉及弹性微血管内微泡振荡的数值建模,旨在提高超声介导的药物输送和诊断成像的安全性和有效性。此类应用的成功取决于对微泡与微血管相互作用的透彻理解。尽管取得了一些进展,但对气体核心周围的稳定壳的关键影响仍未充分探索。为了解决这个问题,我们开发了一种新颖的数值方法来模拟稳定壳。此外,针对复杂的微气泡时空振荡,我们还对随之而来的血管变形进行了新颖的建模。这种新方法可用于剪应力评估,因为剪应力是影响血管通透性的关键因素。最后,我们的独特方法提供了在不同声学条件下微泡与血管相互作用的新见解。结果表明,外壳特性和声学参数对诱导剪切应力有很大影响。在声压振幅增加四倍的情况下,1 MHz 和 3 MHz 时的最大剪切应力分别增加了 15.6 倍和 6 倍。此外,在 2.5 MHz 频率下,当外壳弹性为 0.2 N/m 时,剪切应力峰值可达 15.6 kPa。此外,微血管/气泡尺寸比从 3 减小到 1.5,最大剪切应力从 5.1 千帕增加到 24.3 千帕。这些发现对于优化临床应用中的超声参数至关重要,有可能在改善治疗效果的同时将血管损伤的风险降至最低。不过,虽然我们的模型在再现实验观察结果方面表现出很高的保真度,但它受到血管几何形状和血管特性均一性假设的限制。未来的工作可以通过体外实验测量来改进我们的研究结果。
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来源期刊
Physics of Fluids
Physics of Fluids 物理-力学
CiteScore
6.50
自引率
41.30%
发文量
2063
审稿时长
2.6 months
期刊介绍: Physics of Fluids (PoF) is a preeminent journal devoted to publishing original theoretical, computational, and experimental contributions to the understanding of the dynamics of gases, liquids, and complex or multiphase fluids. Topics published in PoF are diverse and reflect the most important subjects in fluid dynamics, including, but not limited to: -Acoustics -Aerospace and aeronautical flow -Astrophysical flow -Biofluid mechanics -Cavitation and cavitating flows -Combustion flows -Complex fluids -Compressible flow -Computational fluid dynamics -Contact lines -Continuum mechanics -Convection -Cryogenic flow -Droplets -Electrical and magnetic effects in fluid flow -Foam, bubble, and film mechanics -Flow control -Flow instability and transition -Flow orientation and anisotropy -Flows with other transport phenomena -Flows with complex boundary conditions -Flow visualization -Fluid mechanics -Fluid physical properties -Fluid–structure interactions -Free surface flows -Geophysical flow -Interfacial flow -Knudsen flow -Laminar flow -Liquid crystals -Mathematics of fluids -Micro- and nanofluid mechanics -Mixing -Molecular theory -Nanofluidics -Particulate, multiphase, and granular flow -Processing flows -Relativistic fluid mechanics -Rotating flows -Shock wave phenomena -Soft matter -Stratified flows -Supercritical fluids -Superfluidity -Thermodynamics of flow systems -Transonic flow -Turbulent flow -Viscous and non-Newtonian flow -Viscoelasticity -Vortex dynamics -Waves
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