通过相位变化的声焦点在t形分叉处主动诱导流动中的微气泡

K. Masuda, N. Hosaka, R. Koda, Shinya Miyazawa, T. Mochizuki
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引用次数: 2

摘要

我们曾报道过利用三维声力场防止微气泡在流动中分散的方法。然而,由于产生的声力只对微泡的传播方向起推动作用,因此影响微泡行为的方向是有限的。本文研究了考虑声场相位变化对换能器产生的吸引力。我们使用了包含64个PZT元件的平面矩阵阵列传感器,该传感器是专门为产生连续波而开发的。我们制备了t型分岔模型作为人工血管,微泡的过程难以控制。我们产生了两个相位相反的焦点的声场,其中点的中间覆盖了分岔。结果表明,当微泡悬浮液(平均直径为4 um,密度为2.35 μl/ml)以40 mm/s的速度注入时,我们确认微泡在到达分岔点之前就产生了聚集,并进入分岔点被推进到期望的路径,微泡的过程对应于两个焦点的中间。
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Active induction of microbubbles in flow at T-form bifurcation through acoustic focal points with phase variation
We have ever reported the method to produce three-dimensional acoustic force field to prevent microbubbles dispersing in flow. However, because produced acoustic force worked only to propel microbubbles in the direction of propagation of ultrasound, there was a limitation in direction to affect the behavior of microbubbles. In this research we examined to produce attractive force toward the transducer by considering phase variation of acoustic field. We used a flat matrix array transducer including 64 PZT elements, which was specially developed to produce a continuous wave. We prepared a T-form bifurcation model as artificial blood vessel, which was difficult to control the course of microbubbles. We produced an acoustic field of two focal points with opposite phase, where the middle of the points covers the bifurcation. As the results, when microbubbles suspension (average diameter of 4 um, density of 2.35 μl/ml) was injected with velocity of 40 mm/s, we confirmed that microbubbles aggregations were produced before reaching the bifurcation point and entered the bifurcation to be propelled to the desired path, where the course of microbubbles corresponded to the middle of the two focal points.
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