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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Noninvasive field measurement of low-frequency ultrasonic transducers operating in sealed vessels
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Noninvasive field measurement of low-frequency ultrasonic transducers operating in sealed vessels

机译:在密封容器中运行的低频超声换能器的无创现场测量

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This paper describes a noninvasive technique utilizing the acousto-optic effect, laser interferometry, and tomographic principles that have been implemented to measure the acoustic fields generated by low-frequency ultrasonic transducers operating into sealed, water-loaded vessels commonly used in industrial processing applications. A customized scanning frame, incorporating both linear and rotational stages, has been developed to facilitate manipulation of the laser head and vessel under evaluation. First, transmitted pressure profiles in air are predicted from surface displacement data acquired directly by laser measurement of the vibrating aperture. These profiles were then used to verify the measured fields obtained via conventional tomographic scanning procedures, coupled with laser interferometry, applied within a draft-proof scanning facility under free-field conditions. Next, the finite element code PZFlex was employed for the prediction of pressure fields within cylindrical cell configurations. Finally, precise manipulation of the laser firing angle and position was implemented in order to compensate for the effects of refraction at the cell wall boundaries, and to re-establish the projections required for the reconstruction algorithm. The experimental results demonstrate good corroboration with the PZFlex predictions, validating its application of ultrasound as a virtual prototyping tool for the design of high power ultrasonic test vessels
机译:本文介绍了一种利用声光效应,激光干涉术和断层成像原理的非侵入性技术,这些技术已被用于测量由低频超声换能器产生的声场,该低频超声换能器在密闭的,装有水的容器中运行,通常在工业加工应用中使用。已开发出结合了线性和旋转平台的定制扫描框架,以方便对评估中的激光头和血管进行操作。首先,从直接通过振动孔径的激光测量获得的表面位移数据预测空气中的传输压力曲线。然后将这些轮廓用于验证通过常规层析成像扫描程序以及激光干涉测量法在防风扫描设备中在自由场条件下获得的测量场。接下来,使用有限元代码PZFlex预测圆柱单元结构内的压力场。最后,对激光发射角度和位置进行了精确控制,以补偿细胞壁边界处的折射影响,并重建重建算法所需的投影。实验结果证明了与PZFlex预测的良好佐证,验证了其作为高功率超声测试容器设计的虚拟原型工具的超声应用。

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