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Real-time Optical Imaging of Microbubble Destruction with an Acoustic Lens Attached Ultrasonic Diagnostic Probe in Microfluidic Capillary Models

机译:在微流控毛细管模型中,用超声透镜连接超声透镜对微泡破坏进行实时光学成像。

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In this work, an ultrasonic diagnostic system with an attachable acoustic lens was demonstrated for real-time optical imaging of ultrasound-mediated microbubble destruction in a microfluidic capillary model using an inverted microscope. Microbubble destruction under ultrasonic pressure was monitored via an EM-CCD camera with the frame rate of 70 fps. The acoustic field distribution of the transducer with the attachable acoustic lens was simulated via a finite element method (FEM) and measured by a hydrophone. The result of acoustic field distribution shows unfocused beam profiles with 50% decreased pressure of original focal area. With the unfocused beam, inertial cavitation of the microbubbles as a function of transducer input voltages of 30-60 Vpp was studied. In addition, the acoustic cavitation parameters such as frequency of 2 MHz, pulse length of 16 μs, and pulse repetition frequency (PRF) of 1 kHz were investigated under static and dynamic flow conditions in the microfluidic model. In our system, above 45 Vpp, the microbubbles were destroyed more than 50% within 20 seconds so that the threshold for the inertial cavitation was determined to be 45 Vpp in the channel without flow. In the microfluidic capillary model with fluidic flow, it is investigated that shape of microbubble mass continuously changed with acoustic pressure with 60 Vpp.
机译:在这项工作中,使用倒置显微镜对微流体毛细管模型中超声介导的微泡破坏的实时光学成像进行了对具有可连接声透镜的超声诊断系统。通过EM-CCD相机监测超声波在超声波下的微胶质破坏,帧速率为70 fps。通过有限元方法(FEM)模拟具有可连接声透镜的换能器的声场分布,并通过水听器测量。声场分布的结果显示了未聚焦光束型材,其原始焦点区域的压力下降了50%。利用未聚焦的光束,研究了微泡的惯性空化作为换能器输入电压为30-60VPP的函数。另外,在微流体模型中的静态和动态流动条件下研究了诸如2MHz的频率,频率为2MHz,脉冲长度为1kHz的脉冲长度(PRF)。在我们的系统中,在45 VPP以上,微泡在20秒内被破坏超过50%,使得惯性空化的阈值被确定为沟道中的45VPP而无需流动。在具有流体流动的微流体毛细管模型中,研究微胶质质量的形状随着60VPP的声压连续地改变。

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