Improved time domain diffraction analysis for SAW transducers of arbitrary shape

M. Jungwirth, T. Greifeneder, K. Scheiblhofer, A. Stogmuller, R. Weigel, D. Malocha, W. Ruile, C. Ruppel
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Abstract

A time domain (TD) diffraction analysis for SAW transducers was previously developed based on Huygen's principle. The analysis was performed using an approximation to the scalar two dimensional impulse response of an ideal point source which allowed for fast computation of diffraction effects in the time domain. A more rigorous derivation of the TD impulse response from the frequency domain (FD) angular spectrum of waves (ASoW) approach for the case of isotropic phase velocity has also been previously presented, and the extension of the analysis to include the velocity and electromechanical coupling anisotropy found in typical SAW substrates was also included. In order to be able to use the FFT for fast computation an equidistant sampling in the time domain must be evaluated. The present paper will report on an improved resampling-algorithm with a particular weighting to obtain the required equidistant impulses in the time-response, to be able to use the Fast Fourier Transform. Arbitrary transducer geometries can be dealt with by our TD technique. Numerical simulation results (impulse and frequency responses) for specific geometries will be presented.
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改进的任意形状SAW换能器时域衍射分析
基于惠更原理,对声表面波换能器进行了时域衍射分析。采用近似理想点源的标量二维脉冲响应进行分析,从而可以在时域内快速计算衍射效应。在各向同性相速度的情况下,从频域(FD)角波谱(ASoW)方法更严格地推导了TD脉冲响应,并将分析扩展到包括典型SAW衬底的速度和机电耦合各向异性。为了能够使用FFT进行快速计算,必须对时域的等距采样进行评估。本文将报告一种改进的重采样算法,该算法具有特定的权重,可以在时间响应中获得所需的等距脉冲,从而能够使用快速傅里叶变换。我们的TD技术可以处理任意形状的换能器。将给出特定几何形状的数值模拟结果(脉冲和频率响应)。
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