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Microbubble Dynamics at High Mechanical Index - Ultrasound stimulated behaviour of SonoVue from optically predefined 'stand-off'positions

机译:高机械指数的微致动力学 - 光学预定义'脱落位的超声刺激行为

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Introduction of a temporally periodic pressure field within a fluid can induce forced oscillations to bubbles present therein. The resultant [radial] bubble dynamics are a complex function of several parameters, including the driving pressure amplitude, and proximity to nearby boundaries, such as vessel walls, or indeed, other bubbles. Recently, experimentation gauged towards the development of a quantitative understanding of [acoustically] driven bubbles of micrometer dimensions, especially when close to boundaries, has become a challenge of heightened academic and industrial interest. In pursuit of this, the present authors pioneered a new approach to such measurements that exploits optical trapping to locate micro-bubbles at prescribed displacements from a boundary [1,2]. Here, we extend our previous method and report the first comprehensive study that has observed the dynamical behavior of isolated single micro-bubbles (the commercially available ultrasound contrast agent: SonoVue) that had been optically trapped over a range of well-defined displacements from a rigid boundary. All of the measurements were conducted at a mechanical index (MI)>3. We noted a distinct variance in micro-bubble behavior across all quiescent radii and stand-off parameter, and also correlated bubble outcome statistics with measured radial dynamics. Finally, we suggest that the procedure outlined can be exploited to design 'next-generation' micro-bubbles with specific response characteristics.
机译:在流体内引入时间上周期性的压力场可以诱导强制振荡到其中存在的气泡。所得[径向]气泡动力学是几个参数的复杂功能,包括驱动压力幅度,以及附近边界的邻近,例如血管壁,或实际上,其他气泡。最近,在开发对[声学上]的微米尺寸的定量理解的实验,特别是在接近边界时,已经成为高学术和工业利益的挑战。追求这一点,本作者在这种测量中开辟了一种新方法,该测量利用光学捕获来定位来自边界的规定位移的微气泡[1,2]。在这里,我们扩展了先前的方法,并报告了已经观察到孤立单一微泡(市售超声造影剂:Sonovue)的动态行为的第一综合研究,该研究已经光学捕获了一系列明确的A型良好的位移。刚性边界。所有测量均在机械指数(MI)> 3处进行。我们注意到所有静态半径和脱扣参数跨越微泡行为的不同方差,以及具有测量径向动态的泡沫结果统计。最后,我们建议概述的程序可以利用具有特定响应特性的“下一代”微气泡。

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