Pupyrev Pavel D, Lomonosov Alexey M, Mayer Andreas P
General Physics Institute, Russian Academy of Sciences, 119991 Moscow, Russia; Faculty B+W, HS Offenburg, University of Applied Sciences, 77723 Gengenbach, Germany.
Faculty B+W, HS Offenburg, University of Applied Sciences, 77723 Gengenbach, Germany.
Ultrasonics. 2016 Aug;70:75-83. doi: 10.1016/j.ultras.2016.04.014. Epub 2016 Apr 19.
Laser pulses focused near the tip of an elastic wedge generate acoustic waves guided at its apex. The shapes of the acoustic wedge wave pulses depend on the energy and the profile of the exciting laser pulse and on the anisotropy of the elastic medium the wedge is made of. Expressions for the acoustic pulse shapes have been derived in terms of the modal displacement fields of wedge waves for laser excitation in the thermo-elastic regime and for excitation via a pressure pulse exerted on the surface. The physical quantity considered is the local inclination of a surface of the wedge, which is measured optically by laser-probe-beam deflection. Experimental results on pulse shapes in the thermo-elastic regime are presented and confirmed by numerical calculations. They pertain to an isotropic sharp-angle wedge with two wedge-wave branches and to a non-reciprocity phenomenon at rectangular silicon edges.
聚焦在弹性楔尖端附近的激光脉冲会产生在其顶点处传播的声波。声楔波脉冲的形状取决于激发激光脉冲的能量和轮廓,以及构成楔的弹性介质的各向异性。对于热弹性 regime 中的激光激发以及通过施加在表面上的压力脉冲进行的激发,已经根据楔波的模态位移场推导出了声脉冲形状的表达式。所考虑的物理量是楔表面的局部倾斜度,它通过激光探针光束偏转进行光学测量。给出了热弹性 regime 中脉冲形状的实验结果,并通过数值计算得到了证实。这些结果涉及具有两个楔波分支的各向同性锐角楔以及矩形硅边缘处的非互易现象。