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A microreactor chip integrated with focus ultrasonic transducers prepared by a modified Chemical Foaming Process

机译:一种微反应器芯片,集成了通过改进的化学发泡工艺制备的聚焦超声换能器

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In this paper, a microreactor chip integrated with focus ultrasonic transducers prepared by a modified Chemical Foaming Process(CFP) is presented. The device operates by trapping air bubbles within micro pits located in the center of silicon cavities. Focused acoustic waves induced by the spherical shell resonance excite the trapped air bubbles vibrate, resulting in acoustic streaming, which disrupts the laminar flows and increases mass transfer rates and thus accelerate multiphase reactions. First, we shed some light on how oscillating bubbles work in our device. Second, the fabrication of micro glass ultrasonic wave fluidic devices prepared by the modified CFP was introduced. Finally, the resonance properties of the microfluidic device actuated by piezoelectric ceramic are measured experimentally by the Laser Doppler Vibrometer. The results of vibration test show that the resonant frequency of the micro glass bubbles, whether full of fluid or not, is in the range of ultrasonic wave band.
机译:本文提出了一种微反应器芯片,该芯片集成了通过改进的化学发泡工艺(CFP)制备的聚焦超声换能器。该设备通过将气泡捕获在位于硅腔中心的微坑内来进行操作。球形壳共振引起的聚焦声波激发捕获的气泡振动,从而产生声流,这会扰乱层流并提高传质速率,从而加速多相反应。首先,我们阐明了气泡在设备中的工作方式。其次,介绍了用改进的CFP制备的微玻璃超声波流体装置的制造。最后,通过激光多普勒振动计实验性地测量了由压电陶瓷驱动的微流体装置的共振特性。振动测试结果表明,无论是否充满流体,微玻璃气泡的共振频率都在超声波频带范围内。

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