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Trapping of solid particles by cavitation-induced acoustic streaming

机译:空化引起的声流捕获固体颗粒

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Cavitation clouds can be generated by short, high-amplitude, focused ultrasound pulses such as those used in histotripsy. This cavitation activity can be used to noninvasively eliminate occlusive blood clots. It has also been observed in-vitro that free flowing thromboemboli in the blood are attracted to and eroded by the cavitation cloud. Such phenomenon may be useful to prevent embolism during cardiovascular interventions. This study investigated the mechanism of solid particle trapping by the presence of a cavitation cloud in a vessel. A vessel phantom was constructed using gelatin gel and a peristaltic pump provided flow through the vessel lumen. Spherical agarose beads were used to mimic clot particles in the experiment. A 1-MHz focused transducer was used to generate a cavitation cloud in the vessel lumen. High-speed photography and particle image velocimetry were used to measure the fluid flow in the phantom generated by acoustic streaming and the interaction of the flow with agarose particles. Acoustic streaming velocities as high as 1 m/s were generated at the focus in the vessel when cavitation was observed. A high-velocity fluid jet was generated through the focus, along the direction of propagation, with fluid vortices generated to either side of the focus. Particles were generally trapped near the edge of the cavitation cloud in the vortex. Estimation of the fluidic pressure field indicated a negative pressure gradient towards the area around the focus. These results suggest that the streaming creates a region of low pressure near the focus, which effectively traps the particle and provides a counter-force to the drag caused by the blood flow sweeping the particle downstream.
机译:空化云可以通过短的,高振幅的,聚焦的超声脉冲产生,例如组织曲张中使用的那些。这种空化活动可用于无创性消除阻塞性血凝块。体外还观察到血液中自由流动的血栓栓塞被空化云吸引并被空化云侵蚀。这种现象可能对预防心血管介入过程中的栓塞有用。这项研究研究了容器中空化云的存在而捕获固体颗粒的机制。使用明胶构建血管模型,并使用蠕动泵提供通过血管腔的流量。在实验中使用球形琼脂糖珠模拟凝块颗粒。使用1 MHz聚焦换能器在血管腔内产生空化云。高速摄影和颗粒图像测速技术用于测量由声流产生的体模中的流体流动以及该流动与琼脂糖颗粒的相互作用。当观察到气蚀时,在容器的焦点处产生高达1 m / s的声流速度。沿着传播方向,通过焦点产生了高速流体射流,同时在焦点的任一侧产生了流体涡旋。粒子通常被捕获在涡流中空化云的边缘附近。流体压力场的估计表明朝向焦点周围区域的负压力梯度。这些结果表明,流在焦点附近产生了一个低压区域,该区域有效地捕获了粒子,并提供了抵抗由向下游扫掠粒子的血流造成的阻力的反作用力。

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