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Calculation of acoustic field based on laser-measured vibration velocities on ultrasonic transducer surface

机译:基于激光测量振动速度的超声换能器表面的声场计算

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摘要

Determination of the distribution of a generated acoustic field is valuable for studying ultrasonic transducers, including providing the guidance for transducer design and the basis for analyzing their performance, etc. A method calculating the acoustic field based on laser-measured vibration velocities on the ultrasonic transducer surface is proposed in this paper. Without knowing the inner structure of the transducer, the acoustic field outside it can be calculated by solving the governing partial differential equation (PDE) of the field based on the specified boundary conditions (BCs). In our study, the BC on the transducer surface, i.e. the distribution of the vibration velocity on the surface, is accurately determined by laser scanning measurement of discrete points and follows a data fitting computation. In addition, to ensure the calculation accuracy for the whole field even in an inhomogeneous medium, a finite element method is used to solve the governing PDE based on the mixed BCs, including the discretely measured velocity data and other specified BCs. The method is firstly validated on numerical piezoelectric transducer models. The acoustic pressure distributions generated by a transducer operating in an homogeneous and inhomogeneous medium, respectively, are both calculated by the proposed method and compared with the results from other existing methods. Then, the method is further experimentally validated with two actual ultrasonic transducers used for flow measurement in our lab. The amplitude change of the output voltage signal from the receiver transducer due to changing the relative position of the two transducers is calculated by the proposed method and compared with the experimental data. This method can also provide the basis for complex multi-physical coupling computations where the effect of the acoustic field should be taken into account.
机译:产生的声场的分布的分布对于研究超声换能器是有价值的,包括为换能器设计提供指导和分析它们的性能等的基础。一种基于超声换能器上的激光测量振动速度计算声场的方法在本文中提出了表面。不知道换能器的内部结构,可以通过基于指定的边界条件(BCS)来求解场的控制部分微分方程(PDE)来计算出外部的声场。在我们的研究中,换能器表面上的BC,即表面上的振动速度分布,通过离散点的激光扫描测量精确地确定,并遵循数据拟合计算。另外,为了确保整个领域的计算精度即使在不均匀介质中,则使用有限元方法来基于混合BCS解决控制PDE,包括离散测量的速度数据和其他指定的BC。首先在数值压电换能器模型上验证该方法。通过在均相和不均匀介质中操作的换能器产生的声压分布分别通过所述方法计算,并与来自其他现有方法的结果进行比较。然后,该方法进一步实验验证,其两个实际的超声换能器用于我们的实验室中的流量测量。通过提出的方法计算由于改变两个换能器的相对位置而导致的接收器换能器的输出电压信号的幅度变化由所提出的方法计算并与实验数据进行比较。该方法还可以为复杂的多物理耦合计算提供基础,其中应该考虑声场的效果。

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