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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Finite-element analysis of capacitive micromachined ultrasonic transducers
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Finite-element analysis of capacitive micromachined ultrasonic transducers

机译:电容式微加工超声换能器的有限元分析

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In this paper, we present the results of finite-element analysis performed to investigate capacitive micromachined ultrasonic transducers (CMUTs). Both three-dimensional (3-D) and 2-D models were developed using a commercially available finite-element modeling (FEM) software. Depending on the dimensionality of the model, the membranes were constructed using plane or shell elements. The electrostatic gap was modeled using many parallel plate transducers. An axisymmetric model for a single membrane was bui the electrical input impedance of the device then was calculated in vacuum to investigate series and parallel resonant frequencies, where the input impedance has a minimum and a maximum, respectively. A method for decomposing the membrane capacitance into parasitic and active parts was demonstrated, and it was shown that the parallel resonant frequency shifted down with increased biased voltage. Calculations then were performed for immersion transducers. Acoustic wave propagation was simulated in the immersion medium, using appropriate elements in a 3-D model. Absorbing boundaries were implemented to avoid the reflections at the end of the medium mesh. One row of an array element, modeled with appropriate boundary conditions, was used to calculate the output pressure. The results were compared with a simpler model: a single membrane in immersion, with symmetry boundary conditions on the sidewalls that cause the calculations to reflect the properties of an infinitely large array. A 2-D model then was developed to demonstrate the effect of membrane dimensions on the output pressure and bandwidth. Our calculations revealed that the small signal transmit pressure was inversely proportional to the square root of gap height. We also compared FEM results with analytical and experimental results.
机译:在本文中,我们介绍了进行有限元分析的结果,以研究电容微加工超声换能器(CMUT)。三维(3-D)和2-D模型都是使用市售的有限元建模(FEM)软件开发的。根据模型的尺寸,使用平面或壳单元构造膜。使用许多平行板式换能器对静电间隙进行建模。建立了单个膜的轴对称模型。然后在真空中计算设备的电输入阻抗,以研究串联和并联谐振频率,其中输入阻抗分别具有最小值和最大值。演示了一种将膜电容分解为寄生和有源部分的方法,结果表明,并联谐振频率随偏置电压的增加而下降。然后对浸没式传感器进行计算。使用3D模型中的适当元素,模拟了声波在浸没介质中的传播。实施吸收边界以避免介质网格末端的反射。用适当边界条件建模的一排数组元素用于计算输出压力。将结果与一个更简单的模型进行了比较:一个膜处于浸没状态,侧壁上具有对称的边界条件,这导致计算结果反映了无限大阵列的特性。然后开发了一个二维模型,以演示膜尺寸对输出压力和带宽的影响。我们的计算表明,小信号传输压力与间隙高度的平方根成反比。我们还将FEM结果与分析和实验结果进行了比较。

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