Loveday Philip W
Sensor Science and Technology, CSIR Material Science and Manufacturing, Pretoria, South Africa.
IEEE Trans Ultrason Ferroelectr Freq Control. 2008 Sep;55(9):2038-45. doi: 10.1109/TUFFC.895.
A numerical method for computing the time response of infinite constant cross-section elastic waveguides excited by piezoelectric transducers was developed. The method combined waveguide finite elements (semi-analytical finite elements) for modeling the waveguide with conventional 3-D piezoelectric finite elements for modeling the transducer. The frequency response of the coupled system was computed and then used to simulate the time response to tone-burst electrical excitation. A technique for identifying and separating the propagating modes was devised, which enabled the computation of the response of a selected reduced number of modes. The method was applied to a rail excited by a piezoelectric patch transducer, and excellent agreement with measured responses was obtained. It was found that it is necessary to include damping in the waveguide model if the response near a "cut-on" frequency is to be simulated in the near-field.
开发了一种用于计算由压电换能器激发的无限长等截面弹性波导时间响应的数值方法。该方法将用于对波导进行建模的波导有限元(半解析有限元)与用于对换能器进行建模的传统三维压电有限元相结合。计算了耦合系统的频率响应,然后用于模拟对单频脉冲电激励的时间响应。设计了一种识别和分离传播模式的技术,这使得能够计算选定数量减少的模式的响应。该方法应用于由压电贴片换能器激发的轨道,与测量响应取得了良好的一致性。结果发现,如果要在近场中模拟“截止”频率附近的响应,则有必要在波导模型中包含阻尼。