Chinese Optics Letters, Volume. 20, Issue 2, 021203(2022)

Investigation of the laser ultrasound propagation in K9 glass using optical interferometry

Mengmeng Li1,2, Hongchao Zhang1,2、*, Jian Lu1,2, and Zhonghua Shen1,2、**
Author Affiliations
  • 1School of Science, Nanjing University of Science and Technology, Nanjing 210094, China
  • 2MIIT Key Laboratory of Semiconductor Microstructure and Quantum Sensing, Nanjing University of Science and Technology, Nanjing 210094, China
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    References(24)

    [1] R. S. Edwards, B. Dutton, A. R. Clough. Interaction of laser generated ultrasonic waves with wedge-shaped samples. Appl. Phys. Lett., 100, 184102(2012).

    [2] D. K. Hsu, A. M. Ayres, G. Meng, G. Ma. Simultaneous determination of ultrasonic velocity, plate thickness and wedge angle using one-sided contact measurements. NDT & E Int., 27, 75(1994).

    [3] R. J. Dewhurst, C. Edwards, A. D. W. McKie, S. B. Palmer. Estimation of the thickness of thin metal sheet using laser generated ultrasound. Appl. Phys. Lett., 51, 1066(1987).

    [4] J. Li, H. Zhang, C. Ni, Z. Shen. Analysis of laser generated ultrasonic wave frequency characteristics induced by a partially closed surface-breaking crack. Appl. Opt., 52, 4179(2013).

    [5] R. S. Edwards, F. Hernandez-Valle, A. R. Clough, M. H. Rosli. Interaction of ultrasonic waves with surface-breaking defects. AIP Conf. Proc., 1650, 1360(2015).

    [6] R. S. Edwards, B. Dutton, A. R. Clough, M. H. Rosli. Scanning laser source and scanning laser detection techniques for different surface crack geometries. AIP Conf. Proc., 1430, 251(2012).

    [7] C. Shan, Y. Zhao, Y. Gao, X. Zhao, G. Hu, W. Ma, J. Shao. Laser-induced defects in optical multilayer coatings by the spatial resolved method. Chin. Opt. Lett., 17, 031403(2019).

    [8] K. L. Telschow, R. J. Conant. Optical and thermal parameter effects on laser-generated ultrasound. J. Acoust. Soc. Amer., 88, 1494(1990).

    [9] J. S. Yang, T. Sanderson, C. Ume, J. Jarzynski. Laser phased array generated ultrasound for nondestructive evaluation of ceramic materials. J. Nondestr. Eval., 16, 1(1997).

    [10] T. W. Murray, J. B. Deaton, J. W. Wagner. Experimental evaluation of enhanced generation of ultrasonic waves using an array of laser sources. Ultrason., 34, 69(1996).

    [11] C. Cosenza, S. Kenderian, B. B. Djordjevic, R. E. Green, A. Pasta. Generation of narrowband antisymmetric lamb waves using a formed laser source in the ablative regime. IEEE Trans. Ultrason. Ferroelectr. Freq. Control, 54, 147(2007).

    [12] P. Karppinen, A. Salmi, P. Moilanen, T. Karppinen, Z. M. Zhao, R. Myllyla, J. Timonen, E. Haeggstrom. Phase-delayed laser diode array allows ultrasonic guided wave mode selection and tuning. J. Appl. Phys., 113, 144904(2013).

    [13] P. C. Beard, A. M. Hurrell, T. N. Mills. Characterization of a polymer film optical fiber hydrophone for use in the range 1 to 20 MHz: a comparison with PVDF needle and membrane hydrophones. IEEE Trans. Ultrason. Ferroelectr. Freq. Control, 47, 256(2000).

    [14] L. Yu, Z. Tian. Lamb wave structural health monitoring using a hybrid PZT-laser vibrometer approach. Struct. Health Monit., 12, 469(2013).

    [15] A. S. Murfin, R. A. J. Soden, D. Hatrick, R. J. Dewhurst. Laser-ultrasound detection systems: a comparative study with Rayleigh waves. Meas. Sci. Technol., 11, 1208(2000).

    [16] W. J. Staszewski, B. C. Lee, R. Traynor. Fatigue crack detection in metallic structures with Lamb waves and 3D laser vibrometry. Meas. Sci. Technol., 18, 727(2007).

    [17] S. Yan, A. M. Lomonosov, B. Han, H. Zhang, Z. Shen, X. Ni. Investigation of wedge waves using digital shearing speckle interferometry. Int. J. Thermophys., 36, 1074(2015).

    [18] B. A. Bard, G. A. Gordon, S. Wu. Laser-modulated phase-stepping digital shearography for quantitative full-field imaging of ultrasonic waves. J. Acoust. Soc. Am., 103, 3327(1998).

    [19] S. E. Burrows, A. Rashed, D. P. Almond, S. Dixon. Combined laser spot imaging thermography and ultrasonic measurements for crack detection. Nondestr. Test Eval., 22, 217(2007).

    [20] X. Wang, L. Feng, P. Chen, Z. Huang, Y. Yuan. Micro displacement reconstruction of self-mixing grating interferometer based on Littrow structure. Chin. Opt. Lett., 19, 101402(2021).

    [21] C. He, C. Zhou, Q. Zhou, S. Xie, M. Xiao, J. Tian, Y. Yao. Simultaneous measurement of strain and temperature using Fabry–Perot interferometry and antiresonant mechanism in a hollow-core fiber. Chin. Opt. Lett., 19, 041201(2021).

    [22] H. Zhang, J. Lu, Z. Shen, X. Ni. Investigation of laser induced plasma in air using optical interferometry. Opt. Commun., 282, 1720(2009).

    [23] D. C. Ghiglia, M. D. Pritt. Two-Dimensional Phase Unwrapping: Theory, Algorithms, and Software(1998).

    [24] B. Wang, Y. Qin, X. Ni, Z. Shen, J. Lu. Effect of defects on long-pulse laser-induced damage of two kinds of optical thin films. Appl. Opt., 49, 5537(2010).

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    Mengmeng Li, Hongchao Zhang, Jian Lu, Zhonghua Shen, "Investigation of the laser ultrasound propagation in K9 glass using optical interferometry," Chin. Opt. Lett. 20, 021203 (2022)

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    Paper Information

    Category: Instrumentation, Measurement, and Optical Sensing

    Received: Sep. 22, 2021

    Accepted: Nov. 18, 2021

    Posted: Nov. 19, 2021

    Published Online: Dec. 14, 2021

    The Author Email: Hongchao Zhang (hongchao@njust.edu.cn), Zhonghua Shen (shenzh@njust.edu.cn)

    DOI:10.3788/COL202220.021203

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