Grünsteidl Clemens M, Veres István A, Murray Todd W
Research Center for Non-Destructive Testing GmbH, Altenberger Strausse 69, Linz 4040, Austria.
Department of Mechanical Engineering, University of Colorado at Boulder, 427 UCB Engineering Center, Boulder, Colorado 80309, USA.
J Acoust Soc Am. 2015 Jul;138(1):242-50. doi: 10.1121/1.4922701.
The excitability of zero group velocity (ZGV) Lamb waves using a pulsed laser source is investigated experimentally and through numerical simulation. Experimentally, a laser based ultrasonic technique is used to find the optical spot size on the sample surface that allows an optimal coupling of the optical energy into the ZGV mode. Numerical simulations, using the time domain finite differences technique, are carried out to model the thermoelastic generation process by laser irradiation and the propagation of the generated acoustic waves. The experimental results are in good agreement with the numerical predictions. The experimentally and numerically obtained responses of the plate are investigated by a short-time Fourier transform. The responses show that the source diameter does not affect the fundamental behavior of the temporal decay of the ZGV mode.
利用脉冲激光源对零群速度(ZGV)兰姆波的激发特性进行了实验研究和数值模拟。实验方面,采用基于激光的超声技术来确定样品表面上能使光能最佳耦合到ZGV模式的光斑尺寸。利用时域有限差分技术进行数值模拟,以对激光辐照产生热弹性波的过程以及所产生声波的传播进行建模。实验结果与数值预测结果吻合良好。通过短时傅里叶变换对实验和数值得到的平板响应进行了研究。结果表明,源直径并不影响ZGV模式时间衰减的基本特性。